Monday, July 27, 2015

Seizure Disorders

SEIZURE DISORDERS

By Geneva Coats
Your dog develops a far-away look in his eyes, suddenly collapses and begins to tremor and shake uncontrollably. Before you have a chance to react, the incident is over. He remains lethargic and weak for a while afterwards. What happened?
Seizures, epilepsy, "fits", convulsions, all different terms referring to the same condition.
A seizure results from sudden uncontrolled abnormal firing of neurons in the brain. The brain exists in a delicate state of chemical and physical balance. This balance can be upset by a number of factors. If the balance in the brain shifts too far, brain cells (neurons) may become over stimulated, and a seizure may result. This point at which seizures occur is known as the "seizure threshold".
Seizures are commonly preceded by an "aura" or altered state which may be characterized by restlessness, nervousness, salivation, and anxiety. The "ictus" or actual seizure follows next. The dog will become nonresponsive, collapse, and experience involuntary motor movements such as stretching, kicking, or paddling. The motions may vary in intensity from mild tremors to severe jerking movements. Seizures place tremendous stress on the heart, lungs and circulation. The body temperature may get very high from all the muscle activity, and the animal may not breathe adequately. This may result (in rare cases) in brain damage and death. The actual seizure itself may last only seconds or minutes. A seizure persisting more than a few minutes is an EMERGENCY, which requires immediate treatment by the closest veterinary facility. The postictal stage is the period of time after the seizure; the dog may remain lethargic and weak, and possibly disoriented.
To be considered a true seizure, there must be an alteration in the level of consciousness. If the dog is conscious, responsive, aware of his surroundings, or is awakened easily from a sleep state, he is not having a true seizure. Heart and lung problems can sometimes result in weakness and collapse, and middle ear infections can cause dizziness. Twitching and jerking motions may occur in a sleep state, and this is considered normal in early neurological development of puppies.
There can also be focal or partial seizures, which affect a certain part of the body. For instance, the face or just one limb may be involved. This may progress to involve the entire body. The fact that the seizure starts in a local area suggests that a specific area in the brain is damaged, perhaps due to a brain tumor or infection.
Seizures are a sign of irritation of the brain tissue, just as a coughing is a sign of irritation of the respiratory tract. Any of the factors listed below can trigger uncontrolled firing of the neurons of the brain. When a seizure is the result of an identifiable cause, the disorder is known as symptomatic or secondary epilepsy. Seizures may be caused by any of the following:
Brain tumor-more common in dogs over 5 years old.
Head injury
Stroke-can be caused either by bleeding in the brain or bydeficiency of the blood flow to the brain tissue. Either condition can be associated with seizures.
Hypoglycemia or low blood glucose (sugar)-common in toy breeds and especially puppies. Rubbing a small amount of sugar or syrup on the lips, gums and tongue may be effective in stopping the seizure if caused by low blood sugar.
Hypoxemia - Low blood oxygen, with resultant lack of oxygen available to the brain. This can be due to poor lung function, or an abnormal cardiac or pulmonary shunting process in a youngster.
Elevated blood ammonia level due to liver infection, cirrhosis or a liver shunt.
Inflammatory or infectious disease of the nervous system. This can include Lyme disease, distemper, rabies, toxoplasmosis, and Rocky Mountain spotted fever, encephalitis and meningitis.
Ingestion of toxins such as lead, caffeine, chocolate
Botulism-toxins sometimes produced by a bacteria in food.
Exposure to pesticides such as organophosphates (many flea control products) and metaldehyde (snail bait)
Congenital problems, such as hydrocephalus, which produce increased intracranial pressure.
Intestinal parasites, which can cause severe anemia and hypoglycemia. Some parasites also migrate to the liver and brain in their larval forms.
Low serum calcium or magnesium levels- for example, eclampsia in a lactating bitch.
Blood sodium or potassium imbalances. This can be caused by dehydration or kidney problems.
Genetic predisposition as in the MDR-1 mutation common to many herding breeds. This mutation causes a lack of the protein which exerts a protective function in the blood-brain barrier and limits the entry of many drugs to the central nervous system. The lack of this protein renders the dog susceptible to the neurotoxic side effects of several drugs including Ivermectin, Moxidectin and Loperamide.
Kidney failure and high levels in the blood of uremic toxins
Hyperthermia as a result of fever or heat stroke
Thyroid hormone deficiency or hyperactive thyroid.
Seizures are a common disorder in dogs. When tests are done and no reason can be found for the seizure, the disorder is referred to as "idiopathic epilepsy". The term "idiopathic" means that there is no cause for the problem, and that the seizures are not the result of another disease process. This is the type of epilepsy which is usually considered to have an inherited basis.
Idiopathic epilepsy is the most common canine seizure disorder, occurring in up to nearly 6% of all dogs. The problem is more prevalent in some breeds than others. There is a suspected genetic basis for idiopathic epilepsy in German Shepherds, Belgian Tervurens, Keeshonden, Beagles, Dachshunds, Pugs, Poodles, St. Bernards, Irish setters, Siberian Huskies, Cocker Spaniels, Wire-Haired Fox Terriers, Labrador and Golden Retrievers, and Australian Shepherds. In breeds which are genetically predisposed, up to 14% of the population may develop epilepsy. As epilepsy has been shown to be an inherited disorder in humans, baboons, mice, rats, rabbits, gerbils, and chickens, it seems logical that is can be an inherited disorder in dogs as well. Test breeding of epileptic dams and sires done by veterinary researchers have produced incidences of epilepsy in the offspring ranging from between 38% (affected to nonaffected) to 100% (breeding together of two affected dogs).
Hereditary epilepsy commonly begins between the ages of 1-3 years. Seizures which begin earlier or later in the dog's life most probably are a result of a disease process such as those listed above. Your vet will likely want to rule out these conditions before deciding that your dog has hereditary epilepsy.
If your dog has a seizure, don’t panic. Check the clock and make a note of how many seconds or minutes the seizure activity lasts. Keep your dog in a safe environment until the seizure is over. Note what type of abnormal muscular activity happens, so you can describe it for your vet. Do not put anything in your dog’s mouth. Remain by your dog to comfort him. Call your vet for further advice. If the seizure lasts more than a few minutes, take your dog to the closest veterinary facility for immediate care. If your dog has recurrent seizures (more than once in 24 hours), again, seek immediate medical assistance.
Determining the cause is essential for making appropriate treatment choices, and to assist in breeding decisions. You should seek the advice of your veterinarian. Your vet will obtain a medical history, and a full exam including a neurologic exam. He will do blood tests, a urinalysis and fecal exam to look for any possible cause for the seizures. Other exams may include x-ray or ultrasound of the abdomen, EEG to evaluate brain waves, skull x-ray or head MRI, and a cerebrospinal fluid analysis if infection is suspected. Treatment will depend upon the cause of the seizure.
In the case of idiopathic epilepsy, if your dog experiences seizures more frequently than once a month, your vet may decide to place your dog on seizure medication. Antiepileptic drugs do not cure epilepsy, they simply control the seizures. Life-long therapy may be expected. The drugs increase inhibition in the brain, decrease the seizure threshold, and thus make seizures less likely. This often results in side effects such as sedation, uncoordination of movements and appetite stimulation. These effects lessen with time as the body becomes habituated to the medication. The number of dogs who have serious side effects from the medication is small, and often preventable through careful health monitoring. Regular rechecks are essential, and a thorough physical should be done at least yearly.
Phenobarbital and Primidone (Mysoline) are considered first line drugs for idiopathic epilepsy. They are eliminated by the liver and over time may cause liver damage. Your vet will want to monitor liver function tests on a regular basis to avoid this problem. Also blood levels of these drugs are checked to help with deciding on the dosage required. Bone marrow depression and anemia may occur, so a blood count should be done yearly as well.
Potassium Bromide can be used in dogs. Interestingly, it is not well tolerated by humans, as it causes psychological problems in people. However, this is not a problem for dogs. Salty foods should not be given with bromide. Bromide can be mixed with food, as it sometimes can cause an upset stomach.
Valium (diazepam) is affective in treating the acute phase of seizure activity. It is not as effective when given routinely, and is usually reserved for emergency situations.
Many of the newer antiepileptic drugs, such as Dilantin, Tegretol, and Depakote, are metabolized more quickly by dogs than humans. The need for frequent dosing (and their higher price tag) makes their use impractical for dogs.
Unless the seizures are due to low blood sugar or low oxygen due to heart/lung disease, there is no reason to restrict activity. Most epileptic seizures occur when the pet is relaxed and quiet, or even sleeping. Most epileptic pets can lead relatively normal lives with careful monitoring, a healthy diet, plenty of fresh air and exercise, and their favorite human nearby.
References
Davol, Pamela A. "Understanding Canine Epilepsy"
Dvorak, Roy, "Why Does My Dog Have Seizures"
Graves, Thomas K, DVM, "Seizures in Dogs"
O'Brien, Dennis, DVM, PhD., "Understanding Your Pet's Epilepsy"
Primovic, Debra, DVM, "Seizure Disorders"
Copyright 2006. This article may not be reproduced or distributed in any form without express written consent of the author.

Arthritis

ARTHRITIS
Geneva Coats, R.N.
Originally published in the Pomeranian Review

The term “arthritis” means inflammation of the joints. Any joint can be affected by arthritis, including hips, knees, elbows, shoulders, even toes and the spine. Arthritis has a devastating effect on the quality of life, making simple motions such as walking, jumping, and climbing painful or even impossible.


The ends of bones are covered with cartilage, a form of connective tissue. Cartilage acts as a “shock absorber” between the bones. These areas rub together with movement and can literally wear away. As cartilage wears away, calcium deposits can be laid down, which causes further pain and restricts movement.



Special thick fluid lubricates the joint space for ease of motion, and helps prevent cartilage from wearing away as a result of friction. However, as the body ages it may lose the ability to replenish joint fluid or maintain the cartilaginous surfaces on the ends of the bones. Cartilage repairs itself very slowly, due to poor nutrient supply and the fact that joints are seldom resting.


WHAT CAUSES ARTHRITIS?


A common cause of arthritis is degeneration associated with aging. Arthritis can also be the result of a traumatic injury, or it can be due to a deformity like hip dysplasia or patellar luxation. Autoimmune diseases like lupus and rheumatoid arthritis are characterized by joint surface destruction and inflammation caused by a malfunctioning immune system. Arthritis may sometimes result from a systemic bacterial infection or from diseases acquired from tick bites. Gout is another form of arthritis caused by mineral or crystal deposits in the joints.

SYMPTOMS

Arthritis usually develops gradually over time. Cartilage does not contain blood vessels or nerves, so once the joint becomes painful, significant damage has already been done. Symptoms of arthritis can include pain, limping, stiffness, resistance to touch or reluctance to participate in activities that the dog formerly enjoyed. Sometimes a dog may be regarded as “lazy” when in reality he simply prefers to move around as little as possible to avoid pain. A radiograph can confirm arthritic changes in the joints.


PREVENTION


There are several things we as owners can do to help prevent and treat arthritis in our dogs. Throughout your dog’s life, keep him in lean, fit condition. Joint movement stimulates the production of beneficial lubricating joint fluids, so moderate low-impact exercise such as walking or swimming is recommended to maintain joint health. Being overweight stresses the joints, and exercise helps to prevent obesity. However, do not overdo physical activity because this can lead to fatigue and injuries. Also, too much stress to muscles or bones of a young developing body can cause deformity or damage, which may eventually result in arthritis. For this reason aggressive physical workouts are generally not recommended, particularly for the immature dog.


TREATMENT


Most treatments for arthritis center on resting the joint and reducing pain and inflammation. Providing your dog with a supplemental heat source can provide great relief. A heating pad or infrared heat lamp can be used for 15-20 minutes several times daily. Cold flooring should be avoided, and of course your arthritic dog would appreciate a nice soft bed. Many people buy or build ramps for their dog when navigating stairs or getting in and out of the car becomes difficult.


Consult your veterinarian for advice about the use of anti-inflammatory medications. Corticosteroids such as prednisone or dexamethasone may be prescribed in severe cases. Steroids provide quick relief to the inflammation and pain from arthritis, but they also have serious side effects such as GI upset, weight gain, elevated blood sugar level. With prolonged use, steroids cause loss of muscle mass, weakening of bones and depression of the immune system. Use of steroids can also make the problem worse by causing damage to cartilage. Their use is generally reserved for short-term treatment in cases of severe pain and immobility.

Nonsteroidal anti-inflammatory medications (NSAIDs) are frequently recommended. If your veterinarian agrees, aspirin can be tried, using a dosage of 5-10 mg per pound. Do NOT use Tylenol (acetaminophen) or Motrin (ibuprofen).


Other NSAIDS used for the treatment of canine arthritis include:


� Rimadyl or Novox (carprofen)


� Etogesic (etodolac)


� Deramaxx (deracoxib)


� Metacam (meloxicam)


� Zubrin (tepoxalin) and


� Previcox (firocoxib).


These NSAIDs are very effective for relief of pain and inflammation, but there is also a high risk of adverse reactions. Side effects of NSAIDs may range from loss of appetite to ulcers, gastrointestinal bleeding, liver disease, kidney problems and in some cases even death. These medications should only be used under careful supervision of your veterinarian.


Your dog should not take more than one type of NSAID at a time, and a NSAID should only be combined with a steroid very cautiously. Another important point to consider is that steroids and NSAIDs may temporarily relieve symptoms, but they do not improve the condition of the joint structure, and can actually cause further damage to the joint tissues. A holistic approach to arthritis is founded on nutritional joint support.



SOME DIETARY GUIDELINES FOR ARTHRITIS


There are some diet modifications that may be helpful to control arthritis. Grains and other starchy carbohydrates should be avoided because they may aggravate inflammation. Overprocessed foods with added sugar, salt, artificial colors and flavors and artificial preservatives such as ethoxyquin and BHA/BHT should be eliminated. Fruits and berries can be added to the diet; the bioflavonoids that they contain are powerful antioxidants that help reduce the pain and inflammation of arthritis. Beneficial vegetables include celery, carrots, parsley, asparagus, broccoli, cilantro, and garlic. Members of the nightshade family of vegetables should be avoided because they contain irritating solanine alkaloids. This includes peppers, onions, white potatoes, tomatoes and eggplant. Liver should be limited to no more than 5% of the diet.


DIETARY SUPPLEMENTS FOR ARTHRITIS


Nutraceutical supplements help to improve the actual problem, not just relieve the symptoms. Dietary supplements can be taken along with anti-inflammatory medications and can be continued on a long-term basis without any serious adverse side effects. They are generally regarded as harmless. There are many combination products marketed specifically for arthritis. We will cover some of the more commonly recommended supplements here.


Cartilage has two key structural components: collagen fibers (made of protein) and a reinforced gel composed of proteoglycans (GAGs like chondroitin and hyaluronan) which attract and hold water. Supplements provide the body with the building materials needed to maintain healthy cartilage.


Glucosamine is a natural substance that is found in normal joint tissue. Glucosamine stimulates the production of glucosaminoglycans (GAGs) which are important joint proteins. Two examples of GAGs are chondroitin and hyaluronan. When taken as a dietary supplement, glucosamine helps rebuild cartilage and restore synovial (joint) fluid. It also has been found to reduce pain and discomfort.


The tissues that depend on glucoasmine to remain healthy include tendons and ligaments, cartilage, synovial fluid, mucous membranes, several structures in the eye, blood vessels, and heart valves.

Glucosamine has been used for a variety of problems including: breakdown and inflammation of the synovial fluids, damage to the tissues, ligaments and muscles, inflamed sciatic nerve, inflamed joints associated with aging, tracheal weakness and loss of elasticity in the intervertebral discs.


Chondroitin is a major component of cartilage structure. Supplemental chondroitin is believed to promote water retention and elasticity in the joints. Chondroitin enhances the effectiveness of glucosamine when taken together. Also, chondroitin inhibits the enzymes that break down cartilage. Natural chondroitin production declines with age and is disrupted by stress or injury. NSAIDs and corticosteroid drugs that are often prescribed for arthritis also contribute to joint damage.


When taking glucosamine and chondroitin for arthritis, start at a high dose and taper down when you notice improvement. Use at least 20 mg glucosamine per pound of body weight. Allow at least four weeks before expecting to see improvement, although often you will notice pain relief and improved movement after just a few days.


Most glucosamine and chondroitin supplements are produced from the chitinous shells of ocean crustaceans, or from animal cartilage such as bovine trachea. Consumerlab.com has tested various brands of glucosamine supplements marketed for pets, and found that many contained far less chondroitin that they claimed, and some were contaminated with lead. One reliable source recommended Cosequin and Dr Foster and Smith brand.


Hyaluronan, also known as hyaluronic acid, is another substance in the same family as chondroitin. Hyaluronan is the main component of joint fluid. Natural hyaluronan is a thick gel in the joint that cushions and lubricates the joint cartilage surfaces. Hyaluronan is available as a nutritional supplement and has been shown to enter joints and improve condition. Some commercially formulated hyaluronan supplements include Trixsyn and Lubrisyn.


Manganese is included with many glucosamine/chondroitin supplements as it is believed to improve absorption.

Adequan is a purified injectable form of GAG. This injection is given twice weekly for four weeks. Adequan relieves joint pain, stimulates cartilage regeneration, reduces inflammation and stimulates the production of healthy joint fluid.



MSM is a natural sulfur-containing compound derived from kelp. Sulfur is needed for production of collagen, glucosamine and chondroitin


Perna Mussel or green-lipped mussel is a shellfish found in New Zealand. It is high in protein, and contains significant levels of glucosamine and GAGs. Some dog foods (Blue Buffalo and Ziwipeak) include perna mussel in their formulas.


OTHER NATURAL ANTI-INFLAMMATORIES


Fish oil or salmon oil is helpful to soothe arthritic joints. Recent studies in dogs and reported by the Journal of the American Veterinary Medical Association confirmed the benefits of fish oil for arthritis. Compared to placebo groups, the dogs receiving omega-3 fatty acids had a significantly improved ability to rise from a resting position and play by six weeks after beginning supplementation, and improved ability to walk by 12 weeks.

Fish oil contains beneficial Omega-3 fatty acids. Try one capsule of fish oil per ten pounds of body weight. Make sure to use plain fish or salmon oil, and not fish liver oil.


Vitamin E is depleted quickly with the use of fish oil, so supplemental E is a must. Vitamin E also has potent pain relieving and anti-inflammatory qualities. Use 100 IU of vitamin E per ten pounds of body weight at least three times a week.


Vitamin C is essential to maintain collagen, a major component of cartilage. Vitamin C can be taken in doses of 10 mg per pound of body weight, up to 30 mg per pound daily. Ester C is less irritating than ascorbic acid. While dogs do produce their own vitamin C, in cases of arthritis a supplement may be particularly helpful.


Bromelain is an enzyme. It should be given on an empty stomach.


Quercitin and other bioflavonoids naturally occur in fruits and are also available in some supplements. These have antioxidant and anti-inflammatory properties.


Boswellia is an herb that demonstrated significant clinical improvement in joint pain in dogs in a study done in 2004.


Yucca is a root that has a long history of use for arthritis. It contains saponins that may stimulate the body’s natural steroid production.


Avocado/Soybean Unsaponifiables (ASUs) are an extract of avocado and soybean. They have anti-inflammatory properties and enhance the action of glucosamine and chondroitin. Dasuquin is a product combining Cosequin with ASUs.


SAM-E is believed to have anti-inflammatory and pain-relieveing properties. It should be taken on an empty stomach.


Duralactin is a patented product derived from milk of grass-fed cows. It may help reduce inflammation in some cases.


Velvet Antler is a powdered deer antler preparation that is not recommended because of the possibility of transmitting prion chronic wasting disease.


Curcumin or Turmeric is an herb in the ginger family that is reputed to have anti-inflammatory and anti-cancer properties. It is also known as Indian Saffron.


With a little TLC and nutritional support, your arthritic dog can remain active and comfotable well into his senior years!


(This information is presented for informational purposes only; please consult with your veterinarian for advice regarding treatment of your dog’s arthritis.)

Chromosomes-Pull Up Yer Genes!

CHROMOSOMES-Get your Genes On!
Why is Spot larger than Rover? Why does Trixie have a golden coat while Muffie’s is black? And why are Muffie’s ears floppy while Rover’s stand upright?
Specific characteristics of living organisms are determined by their “GENES”. Genes are “coding” segments made up of a substance called DNA. The DNA in your genes is arranged in specific patterns. Different genes are strung together in long rows to form a rope-like chain called a “chromosome”. Each chromosome contains thousands of genes.
Chromosomes are instruction panels; they provide the blueprint to make an organism what it is. Chromosomes carry all of the information necessary to help living things grow, survive and reproduce. Chromosomes are located inside the cells of the body in a central control area called a “nucleus”. These chromosomes determine not only what you look like, but also how your body functions and, to a large extent, how you act, think and feel.
The DNA that makes up genes and chromosomes is like a computer code of instructions. Chromosomes s build a copy of themselves and send those instructions to other parts of the cell, the ribosomes, and the ribosomes in turn manufacture proteins according to instructions provided. These proteins might be enzymes for body metabolism, or proteins for building body tissues.
During normal cell division for growth or cell replacement and repair, chromosomes double and then split apart to form two cells from one. Now both of these cells will end up with identical chromosomes within their nuclei. However, there is a special type of cell division that happens to produce the reproductive or “germinal” cells. Instead of doubling, the germinal cells are produced by by splitting up the original chromosomes. These reproductive germinal cells, the sperm and the eggs (ova), therefore will contain only HALF the number of chromosomes as do the other cells of the body. When a sperm cell combines with an ovum, VOILA! there is then a complete set of genes with a full set of instructions to create a new living being. This new creature will have half his genes originating from his father’s sperm, and the other half will have been contributed by his mother’s ovum.
This process involves something known as “random fertilization”. What does that mean?
The chromosome combination contributed by a sire to his offspring is random, and can vary considerably. Half his chromosomes will end up in that sperm cell…but how many different possible combinations of chromosomes can there be in any one sperm cell?
Let’s check it out. Humans have 46 chromosomes, arranged in 23 pairs, that divide and split up to form germinal cells, and they assort independently. To form a germinal cell, there are 2^23, or 8 million, possible different assortments of chromosomes that could be produced for each individual cell!! The ovum also has 8 million possible different chromosome combinations. 8 million X 8 million = 64 trillion possible unique combinations of chromosomes for every human offspring created from any given mating! See how unique you are! Even your siblings may have quite a different genetic makeup than you do!
A human cell has 46 chromosomes, arranged in 23 pairs. A dog cell, however, has 78 chromosomes, arranged in 39 pairs. Each sire can produce roughly 550 BILLION different assortments of chromosomes in their sperm cells. Multiply that by the 550 billion possible combinations of chromosomes in the dam’s ova, and there are 300,000,000,000,000,000,000,000 possible DIFFERENT combinations of chromosomes that can be produced for any individual dog created from any specific mating.
WOW! that’s a lot of zeros. How do you read such a number? It is 30 billion trillion. This is roughly the same number as the estimate of stars in the visible universe. Each dog from any certain mating is as unique in his genetic makeup as a star! That's a very nice comparison, I think.
But wait! There is another factor that can further increase genetic variety in offspring. This is the phenomenon known as “genetic crossover”. Crossover commonly happens during cell division to produce sperm and ova. What does “crossover” mean? Let’s see….remember we said that each chromosome has a partner chromosome with similar genes on it. During cell division, part of one chromosome may break off and swap material with its partner. This means that sometimes the chromosome that you inherit is totally different from the original one your parent has. The crossover process “shuffles the deck” so to speak, to produce even more variety in offspring. It would be impossible to estimate how much more variety this effect produces! But we would need millions more universes filled with billions more stars to get close to the number of unique combinations of chromosomes possible with any specific mating.

This vastly inconceivable number implies a rich potential to produce dogs who have a very unique and highly individualized genetic makeup. This inherent variety in the dog genome is how man has been able to create so many different breeds with characteristics as different as those noted between a Chihuahua and an Irish Wolfhound. Compare the variety in dogs to that of humans, who all look remarkably similar….even people of different races. We have fewer chromosomes to reassort and recombine, and less chance of isolating and promoting different specific traits.
Now do you still think that one or two litters is enough to judge what your dog can produce? Although, I am sure there are animal rights “overpopulation” handwringers out there who believe that every intact dog will produce billions of puppies in just seven years. Hmmm, I only wish I could get more than three or four at a time to select from!
And just think, each and every chromosome contains thousands of individual genes! In the next issue, we’ll talk about how those genes combine and recombine to work their magic!

Head for the Spa!



You know you need a spa weeked away from the dogs when.....


You Know You Need a Spa Weekend Away From the Dogs When......



You’d rather walk into PetSmart than Sephora.

You notice that ChalkMate leaves your hands oh, so silky soft; and it smells just divine too!

You’ve stopped using lipstick because it has the annoying habit of transferring onto your bait.

Your grooming smock doubles as a bathrobe.

You can't remember which shampoo you bought for the dogs and which you bought for yourself.

You start to imagine how you'd look with a just a little trim around your ears.

While at Victoria's Secret, you wonder which perfume would be just the perfect name for that cute little girl in your latest litter.
You make an appointment to have your nails trimmed....er, I mean, have a pedicure.

The correct conditioning formula for your show dog involves great scientific study, but you figure the family can use a VO5 combo shampoo/conditioner from the 99 cent store.

Your favorite cologne is eau de Crown Royale Magic Touch Conditioner.

Your closet is overflowing with sensible shoes and you can't find an outfit without huge patch pockets.

The phrase "optical brighteners" intrigues you!! To cover your gray, you decide to personally test the dog's color enhancing conditioner.

On a show morning, you blow dry the dog's hair first, then yours…but only if there is enough time.

Your dog brush is Mason Pearson 100% pure boar bristle, and his comb a "Greyhound", mail order from England. Your personal brush and comb are "Goody" brand from a bin at Walmart.
You think that if you wear dark nail polish to match your lipstick, along with thick black eyeliner, that your lovely pigment might make a better impression on today's judge.
You check behind you in the mirror as you head out the door in the morning, but then suddenly remember, you are NOT the one with the plumed tail!

---Geneva Coats for the Pomeranian Review

Seven False Premises of Mandatory Spay-Neuter Laws

Seven False Premises of Mandatory Spay-Neuter Laws


Testimony of Dr. John Hamil regarding AB 1634. The phrase "mandatory sterilization" is substituted for "AB 1634" in some sentences. The rest of the text is unaltered.







Twenty five years of experience in trying to find solutions to the problems of animal relinquishment and euthanasia leads me to request that you reject this ill-conceived bill which can not solve these problems and, more likely, will worsen them.

AB 1634 is based on seven

false premises:

1. That current policies and programs are not working.


The numbers of dogs entering and being euthanized in California shelters has dramatically decreased over the last 30 years in the face continued population growth. Unfortunately, the number of cats impounded and euthanized has not decreased significantly in the last 10 years. We have two entirely different dynamics which require very different approaches if we are to be successful. Mandatory sterilization does nothing to reduce the numbers of cats in shelters.


2. That the numbers of animals impounded and euthanized is

due to a “Pet Overpopulation Problem.”


The study done by the National Council on Pet Population Study and Policy found that the top five reasons for animal relinquishment were moving, landlord issues, cost, lack of time for pet and inadequate facilities. None of these factors are influenced by the purported “overpopulation” of pets. Mandated sterilization does nothing to help pets remain in their homes. If the animals in the shelter were due to “overpopulation;” we would find desirable puppies available in shelters, there would be no market for internet and pet store puppies, there would be no need for shelters to import puppies and puppy smugglers and brokers would be out of business due to market saturation. There is, in fact, a shortage of healthy, well bred and socialized puppies and kittens in California.


3. That being sexually intact equates to being bred.


We know that for personal reasons many owners choose not to surgically alter their pets and they are never bred. It is improper that the government impose its will on these responsible citizens in the absence of any public benefit.


4. That neutered animals are healthier physically and behaviorally.


Recently published data indicates that for a significant percentage of dogs this is not the case.


5. That mandatory spay/neuter will significantly reduce shelter impounds and euthanasia and that Santa Cruz is an example of its success.


MSN is a documented failure. Analysis of the Santa Cruz data and the rejection of this policy by its originator; the Peninsula Humane Society, the No Kill Community, Best Friends Sanctuary, and many other groups refutes this assumption.


6. That mandatory spay/neuter will greatly reduce the Animal Control costs.


Analysis of animal control data indicates that most costs are the fixed costs of facilities; administration, equipment, staff and retirement benefits. The continuous rise in California animal control costs in the face of decreasing numbers of animals impounded refutes this assumption.


7. That the law will not involve veterinarians in enforcement.


The requirement for veterinarians to write letters of exemption and to turn in rabies certificates indicating the reproductive status of the animal to animal control identifies the owners of intact animals. The public will correctly view veterinarians as enforcers.


SPECIFIC VETERINARY CONCERNS


• This law would intrude into the Doctor/Client/Patient relationship. This is an invasive procedure accomplished under general anesthesia with significant risk to the patient and there are significant physical and behavioral consequences for some animals. For these reasons this decision should not be mandated by the state but, rather, be made by the owner after discussion with their family veterinarian.


• In many jurisdictions with mandatory spay/neuter owners have tried to drop out of the system by not licensing their animals. Many owners know that veterinarians are required to turn in copies of rabies certificates and may decide to forego needed rabies boosters, thereby creating an increased public health risk.


• The contentiousness of this bill has driven apart the groups that contribute to and desire to solve this dilemma. If we are to be successful in solving this problem, we need to bring these groups together in developing innovative programs in the future.


If passed, this law will be unfair to the economically disadvantaged. They are the least likely to neuter their pets, see animal control as a threat, and have limited access to low cost clinics. We need to find ways to help this group enjoy the benefits of pet ownership.


If passed, communities in California will no longer have access to Maddie’s Funds. It is their policy to not provide funding for mandatory governmental programs. “Maddie’s Fund is committed to volunteerism” and is intended to foster innovative, collaborative programs like the CVMA Feral Cat Sterilization Program that resulted in the sterilization of almost 200,000 cats over a 3 year period. To date, Maddie’s Fund has provided over 19 million dollars to communities in California.


If passed, this bill will eliminate many local sources of healthy, well bred and socialized pets. Because it will not decrease the demand for puppies and kittens, the bill leaves the people of California vulnerable to puppymills, unregulated internet sales, sellers of smuggled animals and unscrupulous brokers of animals from out of the US. These poor quality pets will be a burden and an expense and many will end up in our shelters.


Finally, it is my belief that locally developed, voluntary, collaborative, supportive and science-based programs always out perform punitive coercive ones.


Thank you for your kind attention. As a veterinarian, past president of the CVMA and an animal advocate, I ask you to vote AGAINST this bill.


(Adapted from Dr. Hamil's testimony at CA AB 1634 hearing)

Pigment and Health

Pigment and Health

Merle and White Spotting Genes


This article was originally written in 2005, just prior to the identification of the merle gene and the subsequent development of the DNA test for merle, and the 2007 discovery of the MITF as the gene responsible for "S" white spotting. It has been updated to reflect these discoveries.

The Relationship of Pigment to Health
by Geneva Coats, R.N.
Rare and exotic colors...one of the most attractive and exciting features of our Pomeranians. Variety is the spice of life! Different styles appeal to different breeders. However, there are some important pigment-related health issues to consider.
BREED STANDARDS
Since the inception of purebred dog registries, standards have been established for all breeds. The standard serves to protect a breed from fashion whims. It strives to maintain a breed's traditional "look" and purpose. The standard establishes desirable conformation goals, temperament characteristics, and suitability for the original purpose of the breed. The standard provides a goal for breeding practices. This is why standards are written in the first place, to act as guides for breeders and judges. You don't need to understand all the details and theories of genetics, but you do need to abide by the standard when breeding and judging.
Our Pomeranian standard was changed in 1997 to allow all colors, patterns, and variations thereof. This may serve to promote some breeding practices which might ultimately be detrimental to the health of the breed. We need to examine this issue carefully. The direction we take in breeding is the path to our future. The desire for health and concern for future generations must always take precedence over the desire for aesthetics.
Why is a color or pattern so important to the stewards of a breed? Breeders have always been keen scientific observers, even before genetics became an established field. They have worked tirelessly toward a goal of producing healthy dogs. Dog with health issues are in limited demand as companions, and often unsuitable for work. Some breed standards disallow excessive white, dilute colors or merle. Many breed standards specify that parti-color dogs have a certain proportion of color to white, or that they must have color extending over both eyes and ears. Most all standards call for full, dark pigmentation of nose, lips, eye rims and pads. Albinism is generally disallowed. These guidelines were not established for aesthetics' sake, but because certain colors, patterns, and lack of pigmentation were known to be associated with an increase in certain specific health problems. There is much documentation and information related to the merle and white spotting patterns, and they will be the focus of this article.
COAT COLOR DEVELOPMENT
The process of coloration and color patterns in dogs starts with embryonic development. The cells which become melanocytes (pigment producing cells) are derived entirely from the neural crest of the embryo. Pigment cells develop from the same cells that give rise to the nervous system. Defects in certain color genes can be associated with defects in the nervous system, as evidenced by vision and hearing problems. Color provides a logical genetic indicator, and explains why it is likely that certain patterned dogs, such as extreme piebalds (>90% white) and merles may be at risk for specific health problems. In studies to date, the coat patterns resulting from genes producing white are significantly associated with deafness. In addition, suppression by "white genes" of pigmentation in the iris of the eye is also associated with deafness. On the other hand, the presence of pigmented, colored patches in the coat is associated with reduced risk of deafness.
WHAT IS MERLE?
Merle is regarded as a coat pattern, not a color. The merle gene works like other dilution genes, in that it lightens whatever color is already there. Whatever the basic color of the dog-unless he is all white-the merle gene will cause dilution and splotching imposed on the base coat color. The appearance is a speckling or marbling, like when bleach is splashed on your clothes. The pigment cells are affected individually in the fetus. Some are disabled completely, leaving white areas. Some cells allow partial expression of pigment, leaving merled or dappled areas. Some cells are unaffected, leaving the coat color normal or non-merled. The amount of dappling or merling can vary. The dog can have perhaps just a small dappled spot somewhere, or perhaps just a light eye with a nondappled, normal coat. Or, it might display dappling throughout the coat. The effect is most noticeable on a black coat; where the black is diluted to grey, the color is called "blue merle".
Merle appears at first glance to be dominant, because if a dog carries one gene for the merle factor, he will be affected by it. However, merle is different, because it is incompletely dominant. A single merle gene, inherited from one parent, produces what is known as a "heterozygous" or "single" merle. This single copy of the gene will usually cause the affected dog to display merling somewhere in the coat. This can range from light dappling to extensive dappling. Sometimes the effect on the coat is not evident, and there is no way to tell at maturity that the dog carries the merle gene. Sometimes, blue flecks in the eyes are the the only sign that a dog carries the merle gene.
If two heterozygous merles are bred together, statistically 25% of the offspring will inherit two merle factor genes, one from each parent. When this happens, we produce what is known as a "Double (homozygous) merle". The effect of the gene is then doubly intense. There is so much color dilution that the dog is usually predominantly white, and almost always has impaired hearing or vision-or both.
In Great Danes, merle interacts with another gene called harlequin, which bleaches the gray areas of the coat to white. In the pure homozygous form, harlequin is lethal. In Danes and Aussies, the tweed pattern is a variation on merle which adds a third, intermediate shade to the coat.
Many double merle dogs are so defective that they do not survive to birth. (estimates are as high as 50% mortality in utero). Those that survive are the ones with "just minor" defects...minor enough to handicap rather than kill. A gene that destroys half of those carrying it in a double dose in utero cannot be dismissed or ignored.
In French, the word "merle" means "blackbird", and "le merle blanc" ("The white blackbird") is an expression, meaning something that is impossible or something that cannot exist. This is an admirable goal for the white merle dog!
HOW MERLE WORKS
Merle is a gene that is inherently unstable. It is a "transposon", or transposable element; a mobile parasite segment of DNA in the chromosome. Transposons usually originate from viruses. A virus is a particle containing DNA which inserts itself into the host cell, thereby infecting it. If the virus does not kill the host cell, it can leave behind a piece of its genetic material in the DNA of the host cell. When this happens in the sex or germinal cells, the particle can become a part of the genetic makeup of some of the offspring. This is a way that mutation occurs.
Transposons have also been called "junk DNA or "selfish DNA", as they rarely provide any benefit to the host cell. Transposons are also often referred to as "jumping genes." The transposon can move to different positions in the cell in a "cut and paste" process. In so doing, it may cause mutations, or alter the amount of DNA in the genome. The merle transposon segment may lose some of its DNA particles during cellular replication during early embryonic development. Coat color in that area will then be less affected by the gene, or even unaffected, and the underlying true coat color will be expressed. This explains why there are some areas of the coat which are NOT dappled, and other areas which ARE.
The decorative variegated Indian corn is produced by transposon elements in the corn gene. Many viruses, such as those responsible for AIDS and feline leukemia, function as transposons. In humans, hereditary diseases such as hemophilia A and B, predisposition to colon polyps and cancer, and Duchenne muscular dystrophy, are all related to inherited mutations produced through the transposon process. Genetic engineers sometimes use transposons to try to intentionally introduce certain genes into an organism.
There are also documented cases of homozygous merles producing non-merle offspring ("germinal reversion"). This is further evidence of the instability of the gene. Not only can you sometimes get non-merle pups (which should not happen according to the rules of Mendelian genetics), but worse things can happen. The "cleft palate syndrome" is a rare and isolated Aussie defect that has been the subject of numerous scientific journal articles and symposia presentations. It is a sex-linked (on the X chromosome) defect, in which females have minor abnormalities, like extra toes, while males die of massive skeletal abnormalities and a cleft palate. This disease started with a homozygous merle bitch that was kept for coat color research.

PIGMENT PLAYS A ROLE IN HEALTH
Many breeds have the white spotting and merle factors in their gene pools. These genes are not colors per se, but do affect the expression of coat color. In breeds which have traditionally included the merle color pattern, the predominantly white (double-factored) merle has been disallowed in the show ring, as well as selected against in the whelping box. And with very good reason. The gene which produces the merle pattern is associated with some very serious health defects. Both the white spotting gene and the merle gene are known to sometimes affect hearing. The merle gene, however, is unique in that it interacts in an as-yet undetermined manner with genes for eye features.
MERLE AND EYESIGHT
There is a complex of eye defects associated with the merle gene. These defects can be superficial in nature, such as a difference in color between the iris of one eye and the other. The example of this is a dog with one brown eye and one blue eye. (Note that this trait is not necessarily indicative of possession of the merle gene, because it can also be found in dogs with extreme white spotting). In addition to superficial indicators there are also major effects, such as absence of the reflective substance which lines the back of the eye, resulting in reduced ability to see in low light. There can be lack of retinal pigment, which directly reduces vision. Small or absent eyeballs, irregular or starburst pupils, and clefts in the iris can occur, as well as persistent pupillary membrane, strabismus (cross-eyed), lens luxation , and juvenile cataracts.
THE MERLE LINK TO MICROPHTHALMIA
The term "microphthalmia" means a smaller than normal, tiny eyeball due to a defect in early development. Microphthalmia is a defect very commonly associated with merle; particularly homozygous "double" merle, it even rarely occurs in heterozygous or "single" merles. Complete absence of the eyeball in the eye socket sometimes occurs. This is known as anophthalmia.
MITF, or "Microphthalmia Transcription Factor", was discovered in 2007 to be the location of the gene that affects pigmentation, causing white spotting (otherwise known as the particolor or piebald pattern).
The merle gene is believed to affect eye development through some sort of interaction with MITF. Now, why would microphthalmia occur in association with merle and not just with white coat color in particolor dogs? I've asked several canine geneticists, but have received no answer! This relationship is still a mystery. The exact mechanism by which merle interacts with the white spotting gene and produces the defect of microphthalmia is still waiting to be discovered!
MERLE AND HEARING
Hearing impairment can occur in merles due to a lack of melanin or pigment in the inner ear. Not all merles will develop problems with hearing, it all depends on whether or not the inner ear is pigmented. If the inner ear isn't pigmented, the nerve cells responsible for hearing can't develop as they should. Then, the nerve endings atrophy and die off in the first few weeks of the puppy's life, resulting in partial or total deafness. The deafness is neither dominant nor recessive, but is linked to the merle gene which disrupts pigmentation and secondarily produces deaf dogs.
White outer ear color is often associated with lack of inner ear pigment and deafness. However, sometimes deafness occurs even with patches of color on the ears. Mild to moderate hearing impairment may never be noticed, and is rarely tested for.
ONE COPY OF THE GENE HARMLESS?
The popular belief is that heterozygous merles are completely normal, and that only homozygous merles have health defects. Heterozygous merles can have expression of lesser defects of the eye such as clefts in the iris, and a thinning of the retina (similar to what is found with Collie eye anomaly). There are also rare cases of microphthalmia in "single" merles. Deafness can also sometimes occur, if the merle gene prevents pigment deposition in the nerve cells of the inner ear during embryonic development.
Heterozygous "single" merles often have reduced eye pigment which produces the characteristic blue eyes. Interestingly, the amount of white even in homozygous merles does not correlate to severity of eye defects. In a study of the embryonic origin of merle eye defects, Dr. Cynthia Cook, of the University of California, San Francisco, observed that the severity of eye defect and amount of pigment were not related. This is in contrast to hearing impairment in merles; the likelihood of deafness increases with increasing amounts of white in the hair coat.
The Hannover Veterinary School in Germany conducted studies on Dapple (merle) Dachshunds. Their studies demonstrated eye problems, sperm imperfections, and hearing impairment. These problems were found in homozygous merles, and also heterozygous merles. Hearing faults, ranging from slight hardness of hearing to complete deafness, occurred in 54.6% of homozygous merles and 36.8% of heterozygous merles. As a result of these studies, in 1986 it was suggested that FCI restrict the breeding of merles on welfare grounds. These studies, however, are now generally considered outdated. Future testing of vision and hearing in merle dogs will hopefully paint a clearer picture for us.
GENETIC LINKAGE CAN CAUSE SPREAD OF DEFECTS
Genes on the same chromosome are usually inherited together. However, during cellular division and replication, sometimes chromosomes will randomly break and recombine. Genes that were formerly associated with each other can then become separated and inherited independently. This process is known as genetic linkage. We have already mentioned the Aussie cleft palate syndrome which originated with a merle bitch. Iris coloboma, or missing part of the iris, is being reported in non-merle Aussies. Coloboma appears as a notch at the edge of the pupil, giving the pupil an irregular shape. This sight-altering defect is believed to have been brought into the breed through linkage with the merle factor. This trait is now inherited independently from merle.
It is likely more than coincidence that breeds in which merle is most common are also breeds which are heavily plagued with a variety of eye defects. Yearly CERF testing by a veterinary ophthalmologist can help screen out heritable abnormalities. Further studies in merle dogs are needed to observe the frequency and exact methods by which eye defects are produced. It is theorized that some mutations are produced by damage done to portions of the chromosome located near to the erratic merle transposon.
BREEDING RECOMMENDATIONS FOR MERLE
Sometimes a dog is genetically carrying the merle factor gene, but there are no outward signs (cryptic or phantom merle). This dog could easily be inadvertently bred to another merle and result in the production of homozygous double merles, so for this reaon it is usually recommended to avoid breeding merle to brindles or any purely phaeomelanin (orange-red-gold-yellow) coat colors.
It is almost universally recommended to NEVER breed two merles together, to avoid producing defective double merles. But, unfortunately, some breeders will intentionally breed merle to merle, hoping to produce a higher percentage of merle offspring. This is sadly a misinformed idea. Others may breed merle to merle in an attempt to produce a double merle sire to use for future breeding. Such a double merle dog (even if vision or hearing impaired) will produce 100% merle offspring. There is a demand for the unusual merle color. Although this method of breeding may be considered unethical, it does happen in many breeds, by uneducated or uncaring breeders.
A merle dog should be bred to a dark colored mate, preferably black or black and tan. A dominant black dog will only produce black offspring half the time, unless he carries two copies of the dominant gene for black. Couple a black with a merle parent, who will produce merle offspring 50% of the time, and the odds just dropped to 25% for producing a blue merle from a black to merle mating...the same odds of producing a sable merle or hidden merle from such a breeding.
Black and tanpoint pattern is recessive and would breed true. If one parent is also merle, you have a 50/50 chance for producing blue merle offspring, and 50/50 tanpoint who are not merle. Recessive black would also breed true, just as black and tan does, but recessive black seems to occur only very rarely in our breed. Also, In our breed, there is a widely carried recessive gene "e" which suppresses all black pigment in the coat. This gene can double up in the offspring to hide the visual appearance of merle.
Here is part of a statement by canine geneticist Sheila Schmutz, written for the Pomeranian standard revision committee in April 2006:
"Yet another gene in the "blue" family that can cause health issues is merle. Merle can not be seen in dogs with an e/e genotype. This e/e genotype occurs commonly in Pomeranians since orange, red and white probably account for the majority of Poms. The problem is that M/M (homozygous merle) dogs are always deaf based on our studies. We recently genotyped 24 mostly white Australian Shepherds and all tested M/M (based on the Clark et al. 2006 PNAS published test) and all were deaf. A proportion of these dogs were also blind in one or both eyes since microphthalmia is another common side effect in M/M dogs. Although in many breeds it is possible to educate breeders to never breed two merle dogs together this advice is not possible to follow in Pomeranians since e/e dogs would not show the merle pattern. It would therefore be necessary instead to advise all persons who breed a merle dog to use only a black or sable mate or to have DNA testing done on their red, orange or white mate prior to breeding to be sure it did not carry merle."

Further complicating the picture is the case of breeding a merle to any dog with excessive white in the coat. Breeding merle to parti-color dogs with more than 50% white coat is advised against; especially if the merle parent also carries genes for particolor or "white spotting". It would be difficult to determine if the resulting puppies were merle or extreme piebald white-or both-without DNA testing! In either case, hearing can be affected.

DNA TEST FOR MERLE
We now have a DNA test for merle! This is a wonderful tool for breeders who choose to avail themselves of the technology. A cheek swab from the dog is sent to the lab, and they can tell you if your dog is merle or not. This test can also tell you if your dog carries one copy or two copies of the gene. Unfortunately, the US company offering this test closed its doors in March 2009. However, another company (Idexx) is poised to take over this service.
Here is the link to the Idexx website:
Unfortunately, the merle test costs close to $100, so some breeders will not o use the test, even when available. These breeders continue to try to guess the merle status of their dogs solely by appearance, noting the amount of dappling and/or white coat color.
AKC registration for Pomeranians now allows for designation of color as merle. However, this will remain an inaccurate system unless breeders DNA test all questionable offspring from their merle parents. Currently, merle is uncommon in the Pomeranian breed. However, as the pattern becomes more popular and widespread, it will more likely show up when least expected in a breeding program.
WHITE SPOTTING AND HEARING

Another pattern gene strongly associated with deafness in dogs is the "S" series-commonly known as white spotting, Irish spotting, or piebalding. Breed examples are the Bull Terrier, Samoyed, Greyhound, Great Pyrenees, Sealyham Terrier, Beagle, Bulldog, Dalmation, English Setter, Papillon and Fox Terrier.
The recessive "S" gene covers the coat color with white, and when weakly expressed allows patches of color. This process is believed to be related to the path of migration taken by the pigment cells in the embryo. During fetal development, the melanocytes (cells that produce pigment) are concentrated in the neural crest. The neural crest is the area which eventually becomes the brain and spinal cord. From the neural crest, the pigment cells migrate to the peripheral areas of the body, such as the head, legs and tail. However, sometimes the melanocytes don't travel completely over the body. Any areas where the pigment cells fail to migrate will remain white. This is why sometimes dogs will have a white spot on the end of the tail, the tips of the toes, or on the chest. If pigment-producing melanocytes fail to reach the inner ear, deafness will result.
White color on the head is often, but not always, associated with lack of inner ear pigment. Patched-colored dogs with dark eyes have been selected for in many breeds. These dogs have reduced incidence of hearing impairment when compared to dogs which are almost totally white.
Not all breeds with the "S" -extreme piebald pattern have been reported to be affected with deafness, and there is also inherited deafness in several breeds which is totally unrelated to coat color.
HEARING TEST

The only way to know for sure if your dog is hearing impaired is through a Brainstem Auditory Evoked Response Test, or BAER test. This testing is only available at select facilities and can be expensive. It need only be performed once in a dog's lifetime (preferably at a young age) to rule out hereditary hearing impairment. A complete list of BAER testing facilities can befound on Dr. George Strain's website: www.lsu.edu/deafness/deaf.htm. Selective breeding for hearing dogs, as evidenced by normal BAER testing, can reduce the incidence of deafness in dogs, including those with high risk factors.
OTHER PROBLEMS
Other health concerns associated with lack of pigmentation are skin allergies, skin cancer and sunburn, demodicosis (immune-mediated hair follicle mange), follicular dysplasia (coat which is dull and breaks), reduced fertility and sterility, and photo-induced epilepsy.
CONCERNS RELATED TO THE PRODUCTION OF HANDICAPPED DOGS
Some animal welfare specialists endorse humane euthanasia for all dogs deaf in both ears (bilaterally deaf). Hearing can not be accurately assessed before 5 weeks of age. At this age, euthanasia can be an agonizing decision for any caring, ethical breeder.

Deaf or blind dogs require special placement arrangements. A breeder is morally and ethically responsible for care and placement of handicapped dogs. We may see in the future an increase in handicapped Pomeranians turned over to rescue or to shelters. As there are always so many healthy dogs in shelters and rescue who cannot find homes, the odds of finding homes for handicapped dogs are even greater. Support for rescue from our parent and regional clubs will likely need to increase.
WHERE DO WE GO FROM HERE?

Many people have voiced concern that the merle pattern has only recently been introduced to our breed, through crossbreeding with merle dogs of other breeds. However, all breeds have been created through such methods at some point in their history. The concern is not so much HOW the pattern appeared in our breed, but rather WHERE it will take us in the future.
APC is the parent club for the Pomeranian, and as such, should serve the breed with the commitment and resonsibility that the word "parent" implies. It is a responsibility of a parent club to discourage breeding that is known to increase the probability of dogs with health problems. This can be attempted through education of breeders and the public. Such education can be provided on the club website or through the person designated as health and genetic liaison. Education should include factors to consider in selecting a canine companion, as well as methods of developing a breeding program with an emphasis on producing healthy offspring. Public awareness of health issues may eventually create an increased demand for dogs bred as much for good health as for physical beauty.
Many breed clubs promote responsible breeding through the breed standard Itself. (For instance, our Pomeranian standard stipulates that eyes must be dark).
Guidelines can also be provided through a breed club's code of ethics. The guidelines might contain recommendations such as:
1. Yearly CERF testing for all breeding stock, particularly merles. (Clinics should be made available at national and regional specialties).
2. BAER testing should be performed once in a dog's lifetime prior to breeding. This is especially important in merle and extreme piebald patterns.
3. All dogs from merle litters be sold only to knowledgeable breeders or transferred to new owners after being spayed or neutered. This will help prevent uneducated breeding and the production of handicapped dogs.
4.Vision and hearing health should be guaranteed in all puppy contracts, Dogs so affected should be readily taken back by their breeder at any point in their lifetime.
5. Any puppies from a litter with a merle parent who do not appear to be merle should be DNA tested to determine merle status, (unless of course they are going to be sterilized, in which case DNA merle testing would not be necessary).

As breeders, we need to avoid the ostrich syndrome. Let's not stick our heads in the sand and hope problems will go away....they might get worse if we do!

STUDY!! We should learn all we can about genetics and heredity-of all breeds, not just our own. The other guy's problem today may well be ours tomorrow.
SUMMARY
Our breed already has some health concerns. It would seem unwise to encourage an increase in defects purely for the sake of novel color patterns. Through education and personal responsibilty, risky breeding practices can be minimized. We should strive to produce puppies blessed with the gifts of normal vision and hearing. If this article serves to prevent the birth of just one handicapped dog through heightened breeder awareness, it will have been worthwhile.
PIGMENT-RELATED DISORDERS IN HUMANS
One in 17,000 persons in the USA has some type of albinism, as indicated by little or no pigment in their eyes, skin, or hair. People with albinism always have problems with vision. This results from abnormal development of the retina and abnormal patterns of nerve connections between the eye and brain. It is the presence of these eye problems which defines the diagnosis of albinism. Albinism may be limited to the eyes or involve hair and skin to varying degrees.
Waardenburg syndrome is an inherited disorder in humans characterized by varying degrees of hearing loss and changes in skin and hair pigmentation. This syndrome was named for the Dutch ophthalmologist who noticed that people with pigmentation abnormalities of the hair, eyes and skin, often had hearing impairment.Those with Waaardenburg syndrome may have two differently colored eyes, one brown and one blue. Sometimes, one eye has two different colors. Others may have unusually brilliant blue eyes. People with Waardenburg syndrome also have distinctive hair coloring, such as a patch of white hair near the forehead, or they might have white patches of skin. Waardenburg's is associated with other birth defects such as spinal or intestinal disorders or cleft palate.
After doing this research, I finally realized why I reach for sunglasses each and every time I go outdoors on a sunny day! I have blue eyes, and cannot tolerate the bright light. My eyes lack sufficient light-blocking pigment!

Sincere thanks to TAMU's Leigh Anne Clark, PhD for answering my many questions. You are wonderful!
Thanks to Sheila Schmutz, PhD for her expert advise on canine color genetics:
Thanks to JP Yousha for her color genetics expertise! Your input was invaluable.
www.chromadane.com
REFERENCES
Anderson, Cheryl, "Theories of Color and Pattern Dominance in Shelties"
Bowling, Sue, "Canine Color Genetics", "Elementary Merle Genetics for Newcomers", "Basic
Genetics, the Relationship of Genes to Traits"
Cattanach, Bruce M., "The Dalmation Dilemma: White Coat Color and Deafness"
Chopson, Jane, "Inheritance of Great Dane Coat Color" Sept 1992.
Dowd, Scot E, PhD, "Health and the Merle Pattern", American Dog Breeders Association
Little, Clarence C,. The Inheritance of Coat Color in Dogs, 1957.
Sharp, C. A., "Can You See? Inherited Eye Diseases in Aussies", "Genetic Nightmares", "The Trouble with Merle", "White Fright".
Strain, George M. "Deafness Prevalence and Pigmentation and Gender Associations in Dog
Breeds at Risk". May 15, 2003.
Strain, George M., "Hereditary deafness in Dogs and Cats: Causes, Prevalence, and Current
Research." Oct 2, 2003.
"The Merle", United States Border Collie Club Newsletter, Winter 1995.
Willis, Malcolm B. Genetics of the Dog, 1989
Willis, Malcolm B., "Merle Chihuahuas-Time to Call a Halt" Our Dogs, Feb. 17, 2005.
Yousha, J. P., "Whites; is it Worth the Risks?"
Yousha, J. P., "The Harlequin Family of Dogs: Harls, Merles, Blacks, Whites and More."
INTERNET RESOURCES

Copyright 2005. Revised 2009.This article may not be reproduced or distributed in any form without express written consent of the author.