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I am the Momma of 8 children. Seven here on earth and 1 precious little Angel in Heaven. My children range in age from 2 months to 25 years. My 6 year old was born with a laundry list of complex medical conditions. He has Trisomy 21 (Down Syndrome), a rare brain malformation, which resulted from a mutation of the PAX-6 gene, bilateral anophthalmia, which means that he was born without any eyes, so he is totally blind. At the age of 2 1/2 months old he had to have a tracheostomy to help aid in his breathing. He is hearing impaired, with normal hearing in his left ear and has profound deafness in his right. At 3 1/2 years he had surgery to have a Mic-Key button placed in his stomach (feeding Tube), which is mainly used to give him his medications. He also has insulin dependant diabetes and wears an insulin pump, which gives him a continuous dose of insulin. Even with his many dis"abilities," including being globally developmentally delayed, he has accomplished more than anyone would have ever believed that he could. Join us in our journey living with a Dis"Abled" child....
Showing posts with label Medical Research. Show all posts
Showing posts with label Medical Research. Show all posts

Monday, November 9, 2009

American Journal Of Medical Genetics

Here is an article that was written and published following our visit to NIH, in December 2008. It briefly describes the PAX6 gene mutation that Timmy inherited from both his dad and myself. And how this mutation affects each of us. In the article it states that Timmy's brother "possibly" inherited both mutated copies of the PAX6 gene. I would like to clarify that Josiah passed away due to a ruptured bowel and NOT because of the "possibility" of him having inherited 2 copies of the mutated gene. My glucose level that was evaluated was not a fasting glucose level. I had forgotten that I had eaten just before the blood draw. (A busy day, stress and age all played a part in my memory lapse!) :0) During my visit to NIH in August 2009, I have been daignosed with Type 2 diabetes. My blood glucose levels are currently being controlled by exercise and a Metformin tablet 3x a day.

NOTE: Two additional MRI pictures can be viewed on previous post dated Nov 8th.
   
                               AMERICAN JOURNAL OF MEDICAL GENETICS

CLINICAL REPORT

Compound Heterozygosity for Mutations in PAX6 in a Patient With Complex Brain Anomaly, Neonatal Diabetes Mellitus, and Microophthalmia

Benjamin D. Solomon,1 Daniel E. Pineda-Alvarez,1 Joan Z. Balog,1 Donald Hadley,1 Andrea L. Gropman,1,2 Radha Nandagopal,3 Joan C. Han,3 Jin S. Hahn,4 Delphine Blain,5,6 Brian Brooks,5 and Maximilian Muenke1*

1National Human Genome Research Institute, National Institutes of Health, Bethesda, Maryland
2Children’s National Medical Center, Washington, District of Columbia
3Eunice Kennedy Shriver National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, Maryland
4Stanford University, Palo Alto, California
5National Eye Institute, National Institutes of Health, Bethesda, Maryland
6MedStar Research Institute, Hyattsville, Maryland

Received 22 July 2009; Accepted 2 August 2009

We report on a patient with trisomy 21, microophthalmia, neonatal diabetes mellitus, hypopituitarism, and a complex structural brain anomaly who was a member of a large bilineal family with eye anomalies. The patient inherited a different mutation in PAX6 from each parent and is the only known living and second reported patient with compound heterozygosity for mutations in PAX6. PAX6 is a transcription factor involved in eye and brain development and has roles in pancreatic and pituitary development. Clinical evaluation of the propositus and his parents demonstrated the effects of mutations of differing severity in multiple individuals. Published 2009 Wiley-Liss, Inc.
Key words: PAX6; microophthalmia; aniridia; neonatal diabetes mellitus

How to Cite this Article: Solomon BD, Pineda-Alvarez DE, Balog JZ, Hadley D, Gropman AL, Nandagopal R, Han JC, Hahn JS, Blain D, Brooks B, Muenke M. 2009. Compound heterozygosity for mutations in PAX6 in a patient with complex brain anomaly, neonatal diabetes mellitus, and microophthalmia. Am J Med Genet Part A 149A:2543–2546.

INTRODUCTION

PAX6, located on chromosome 11p13, is a highly evolutionarily conserved transcription factor involved in ocular and neural development [Hanson et al., 1999; Simpson and Price, 2002].
Heterozygous deletions or loss-of-function mutations in PAX6 can result in ocular anomalies [Jordan et al., 1992; Robinson et al., 2008]. Truncating mutations in the open-reading frame are more commonly associated with aniridia; missense mutations occur with variable eye anomalies including keratopathy, congenital optic nerve defects, cataracts, isolated foveal hypoplasia, iris hypoplasia, and (rarely) microophthalmia [Tzoulaki et al., 2005].
    PAX6 is expressed in the pancreas, and mutations in PAX6 may result in abnormal glucose metabolism and defective processing of proinsulin [Wen et al., 2009]. In the human embryo, PAX6 is expressed in the pituitary gland, and in mice, appears to play a role in pituitary development and function [Bentley et al., 1999; Kioussi et al., 1999; Terzic and Saraga-Babic, 1999]. Finally, heterozygous mutations in PAX6 may also result in auditory processing deficits related to corpus callosum anomalies [Bamiou et al., 2007].
    One individual has previously been described with compound heterozygous nonsense mutations in PAX6 [Glaser et al., 1994]. That patient, who died at 1 week of age, had anophthalmia with fused eyelids, choanal atresia, microcephaly, and a complex brain anomaly described as a large midline cavity with an absent corpus callosum, hypoplastic brainstem, near-absent olfactory bulbs, and polymicrogyria. Facial dysmorphisms included a small, malformed nose, a high-arched palate, and micrognathia. No other organ anomalies were noted on full autopsy, and endocrinologic abnormalities were not described.

   We describe a 4-year-old male who additionally had trisomy 21 and who is the second reported patient (and the only to survive the neonatal period) with mutations in both PAX6 alleles. We also depict a four-generation pedigree in which there was clinical and molecular evidence that numerous relatives were PAX6 mutation heterozygotes. This family provides evidence for the wide phenotypic spectrum associated with mutations in PAX6. The father’s missense mutation resulted in much milder ophthalmologic anomalies than the mother’s nonsense mutation, while the presence of both mutations in the propositus (and likely, his deceased brother) resulted in severe ophthalmologic, neurologic, and endocrinologic manifestations, the last of which has not previously been described in a human with two PAX6 mutations.

Published 2009 Wiley-Liss, Inc. {This article is a US Government work and, as such, is in the public domain in the United States of America.

Grant sponsor: National Human Genome Research Institute, National Institutes of Health.
*Correspondence To:
Prof. Maximilian Muenke, National Institutes of Health, Building 35,
Room 1B-203, MSC 3717, Bethesda, MD 20892.
E-mail: mamuenke@mail.nih.gov
Published online 26 October 2009 in Wiley InterScience (www.interscience.wiley.com)

METHODS

The patient and his parents participated in our comprehensive clinical study on holoprosencephaly and related neurological disorders at the National Human Genome Research Institute, National Institutes of Health. Appropriate consent was obtained for all participants, including for photo publication. Sequence analysis for SHH, ZIC2, SIX3, and TGIF, the four most common holoprosencephaly-associated genes, was performed by methods previously described [Roessler et al., 1996; Brown et al., 1998; Wallis et al., 1999; Gripp et al., 2000]. Sequence analysis of PAX6 was performed commercially (GeneDx, Gaithersburg, MD).

CLINICAL REPORT

When evaluated by us, the propositus was a 4-year-old Caucasian male with prenatally diagnosed trisomy 21. He was initially diagnosed as having lobar holoprosencephaly. His complex medical history additionally included bilateral microophthalmia, choanal atresia, severe developmental delay, and renal dysplasia with recurrent urinary tract infections. Evidence for hypopituitaris included central hypothyroidism, secondary adrenal insufficiency, and a history of cryptorchidism and micropenis (now status—post-testosterone treatment) making gonadotropin deficiency likely. He had neonatal-onset insulin-dependent diabetes mellitus which was very difficult to control, but abdominal MRI revealed no pancreatic anomalies.
     Review of the propositus’s brain MRI showed structural abnormalities not consistent with holoprosencephaly because of the lack of hemispheric fusion, but included multiple anomalies including agenesis of the corpus callosum, midline interhemispheric cyst, hypoplastic pons, and vermis (absent inferiorly), possible Dandy–Walker malformation, dysplastic tectum, pituitary and hypothalamic hypoplasia, and a globular (though not fused) basal ganglia. The thalamic nuclei were well separated by a large third ventricle. Microcephaly and asymmetric microophthalmia were also evident (Fig. 1).

 
 On physical examination, the child displayed physical features consistent with his diagnosis of trisomy 21, as well as bilateral severe microophthalmia, extreme microcephaly (head circumference 50th centile for a 1-month-old with Down syndrome), and a smooth philtrum (Fig. 1).


Propositus with compound heterozygosity for mutations in PAX6. Facial features were consistent with trisomy 21 and were also notable for extreme microcephaly, microophthalmia, and a smooth philtrum. Axial, coronal, and sagittal (from top) brain MRI demonstrates complex structural brain anomaly in propositus. (SEE ABOVE MRI PHOTO).


The propositus’s mother had a history of aniridia, but reported no other medical problems. She had an extensive family history of autosomal-dominant aniridia, though no previous genetic study had been initiated. On physical examination, no extraocular anomalies were appreciated. Ophthalmological examination showed bilateral aniridia, glaucoma, and corneal opacifications, as well as a dense cataract in the right eye. While she had not been previously diagnosed with diabetes, she had an elevated fasting glucose on our evaluation.

The propositus’s father reported a history of cataracts in early childhood and eventual blindness, as well as hearing loss. He also had an extensive family history of similar visual problems and hearing loss. On examination, he had a high palate and dental crowding in addition to ocular anomalies. Ophthalmological examination showed bilateral microcornea, a right eye cataract, and left aphakia (absent lens). He also had subtle iris hypoplasia and corectopia.

The propositus’s brother, on whom DNA was not available for testing, was described as having very similar structural brain anomalies to the propositus. He additionally had neonatal diabetes mellitus and anophthalmia, and died in infancy.

AMERICAN JOURNAL OF MEDICAL GENETICS PART A

MOLECULAR TESTING



Sequence analysis for mutations in the four most common holoprosencephaly-associated genes (SHH, ZIC2, SIX3, and TGIF) was negative.

The patient’s father had a nonconservative missense mutation (c.112C>T, resulting in p.R38W) in the paired box domain of PAX6. This mutation has previously been reported in a patient with microphthalmia and aniridia [Henderson et al., 2007]. This is a highly evolutionarily conserved residue which mediates sequence specific DNA binding [Hanson et al., 1999; Xu et al., 1999].

The patient’s mother had a nonsense mutation (c.718C>T, resulting in p.R240X) in the homeobox domain of PAX6. This mutation has previously been reported in a patient with aniridia. The premature insertion of a stop codon in the homeobox domain is predicted to result in nonsense-mediated decay and a consequently functionally null allele [Wilson et al., 1995; Tzoulaki et al., 2005].

The propositus inherited both the maternal and paternal mutations in PAX6.

DISCUSSION

This is the second reported and the only known surviving patient with mutations in both PAX6 alleles. Analysis of the findings provides a unique example of the phenotypic effects of compound heterozygosity of mutations of PAX6. The propositus’s hypopituitarism, diabetes mellitus, and brain and ophthalmologic anomalies can all be explained by the PAX6 mutations. The mutations also explain the ophthalmologic phenotype in his parents, and additionally may explain impaired glucose tolerance in the propositus’s mother.

The previously reported patient, who had a nonsense mutation in each PAX6 allele, survived to the eighth day of life [Glaser et al.,1994]. The propositus’s brother, who was described as having near identical brain and ophthalmologic anomalies as the propositus, died in early infancy and was not available for genetic testing. However, given the similar phenotypes and the 25% chance that the parents would give birth to a child with both mutations, it is likely that the deceased sibling inherited both mutant alleles. The morbidity associated with inheriting two mutations and the fact that the propositus additionally had trisomy 21 make his survival and relative good health an especially rare event.

Finally, this case highlights the importance of a multidisciplinary approach which includes the evaluation of multiple family members in the diagnosis of unusual and complex patients.

ACKNOWLEDGMENTS

We are extremely grateful to the family presented in this report. This research was supported by the Intramural Research Program of the National HumanGenome Research Institute, National Institutes of Health.

REFERENCES

Bamiou DE, Free SL, Sisodiya SM, Chong WK, Musiek F, Williamson KA, van Heyningen V, Moore AT, Gadian D, Luxon LM. 2007. Auditory interhemispheric transfer deficits, hearing difficulties, and brain magnetic resonance imaging abnormalities in children with congenital aniridia due to PAX6 mutations. Arch Pediatr Adolesc Med 161:463---469

Bentley CA, Zidehsarai MP, Grindley JC, Parlow AF, Barth-Hall S, Roberts VJ. 1999. Pax6 is implicated in murine pituitary endocrine function. Endocrine 10:171–177.

Brown SA, Warburton D, Brown LY, Yu CY, Roeder ER, Stengel-Rutkowski S, Hennekam RC, Muenke M. 1998. Holoprosencephaly due to mutations in ZIC2, a homologue of Drosophila odd-paired. Nat Genet 20:180–183.

Glaser T, Jepeal L, Edwards JG, Young SR, Favor J, Maas RL. 1994. PAX6 gene dosage effect in a family with congenital cataracts, aniridia, anophthalmia and central nervous system defects. Nat Genet 7:463–471.

Gripp KW, Wotton D, Edwards MC, Roessler E, Ades L, Meinecke P, Richieri-Costa A, Zackai EH, Massague J, Muenke M, Elledge SJ. 2000. Mutations in TGIF cause holoprosencephaly and link NODAL signalling to human neural axis determination. Nat Genet 25:205–208.

Hanson I, Churchill A, Love J, Axton R, Moore T, Clarke M, Meire F, van Heyningen V. 1999. Missense mutations in the most ancient residues of the PAX6 paired domain underlie a spectrum of human congenital eye malformations. Hum Mol Genet 8:165–172.

Henderson RA, Williamson K, Cumming S, Clarke MP, Lynch SA, Hanson IM, FitzPatrick DR, Sisodiya S, van Heyningen V. 2007. Inherited PAX6, NF1 and OTX2 mutations in a child with microphthalmia and aniridia. Eur J Hum Genet 15:898–901.

Jordan T, Hanson I, Zaletayev D, Hodgson S, Prosser J, Seawright A, Hastie N, van Heyningen V. 1992. The human PAX6 gene is mutated in two patients with aniridia. Nat Genet 1:328–332.

Kioussi C, O’Connell S, St-Onge L, Treier M, Gleiberman AS, Gruss P, Rosenfeld MG. 1999. Pax6 is essential for establishing ventral-dorsal cell boundaries in pituitary gland development. Proc Natl Acad Sci USA 96:14378–14382.

Robinson DO, Howarth RJ, Williamson KA, van Heyningen V, Beal SJ, Crolla JA. 2008. Genetic analysis of chromosome 11p13 and the PAX6 gene in a series of 125 cases referred with aniridia.AmJ Med Genet Part A 146A:558–569.

Roessler E, Belloni E, Gaudenz K, Jay P, Berta P, Scherer SW, Tsui LC, Muenke M. 1996. Mutations in the human Sonic Hedgehog gene cause holoprosencephaly. Nat Genet 14:357–360.

Simpson TI, Price DJ. 2002. Pax6; a pleiotropic player in development. Bioessays 24:1041–1051.

Terzic J, Saraga-Babic M. 1999. Expression pattern of PAX3 and PAX6 genes during human embryogenesis. Int J Dev Biol 43:501–508.

Tzoulaki I, White IM, Hanson IM. 2005. PAX6 mutations: Genotypephenotype correlations. BMC Genet 6:27.

Wallis DE, Roessler E, Hehr U, Nanni L, Wiltshire T, Richieri-Costa A, Gillessen-Kaesbach G, Zackai EH, Rommens J, Muenke M. 1999. Mutations in the homeodomain of the human SIX3 gene cause holoprosencephaly. Nat Genet 22:196–198.

Wen JH, Chen YY, Song SJ, Ding J, Gao Y, Hu QK, Feng RP, Liu YZ, Ren GC, Zhang CY, Hong TP, Gao X, Li LS. 2009. Paired box 6 (PAX6) regulates glucose metabolism via proinsulin processing mediated by prohormone convertase 1/3 (PC1/3). Diabetologia 52:504–513.

Wilson DS, Guenther B, Desplan C, Kuriyan J. 1995. High resolution crystal structure of a paired (Pax) class cooperative homeodomain dimer on DNA. Cell 82:709–719.

Xu HE, Rould MA, Xu W, Epstein JA, Maas RL, Pabo CO. 1999. Crystal structure of the human Pax6 paired domain-DNA complex reveals specific roles for the linker region and carboxy-terminal subdomain in DNA binding. Genes Dev 13:1263–1275.

Sunday, August 16, 2009

We're Back From NIH

Whew, What A Week!!!! I need a vacation now, most definately! I so wish we had taken the 2 days for ourselves AFTER the week of testing. Because I really could use a soak in a hot tub and a long relaxing swim in pool.....
We spent Saturday sight seeing in D.C. We love to vacation in D.C. because all of the museums are free, the transportation is easily accessable and there is always something fun to do there. I finally got to go tour the Batanical Gardens. I wish I had a green thumb and could grow plants and flowers that beautiful. I love to look at and smell beautiful flowers. I like flowers the best though IF they are not picked. It makes me so sad when something so beautiful dies.
Hubby has laid claim to one of the fur trees outside of the Batanical Gardens as "His" Christmas Tree. Doesn't hurt to dream does it? I have to admit it is a perfectly shaped tree.

We also picked up the kids a little something. We bought Emily an astronaut barbie, Timmy a set of magnetic blocks and Zach a brain teaser puzzle, which my little genius solved within a few minutes of opening the box. I'm still working on the puzzles solution. This isn't surprising, I still haven't figured out the solution to the Rubix Cube yet either.

Our visit to NIH, aside from the stress of all of the testing, was very pleasant. All of the Doctors, nurses, techs who preformed some of the tests, the volunteers and other staff members at NIH were very friendly and helpful. The food was DELICIOUS! We were able to choose from a menu full of a variety of foods, desserts and drinks. Unlike a typical hospital menu, from which you may have 2 main dishes to choose from at each meal. I do have to say though, compared to our previous stay at the Children's Inn in December 2008, the staff and other families are friendly and the place is full of noise and activities. The staff at the Family Lodge aren't as friendly and the Lodge is very dimly lit and quiet, like walking into a funeral home of sorts. The rooms and the rest of the building were clean, so I guess that is what is most important anyway.

We were invited to participate in the WAGR research project being conducted by Dr. Joan Han. Being that all of us have a mutation of the PAX-6 gene, Dr. Han felt that we would make good study candidates. To learn more about WAGR syndrome you can go here http://www.wagr.org/

Our week started out on Monday morning at 7:00am. Upon admission to the Clinical Center, we each had our vital signs taken, height and weight obtained, a visit from Dr. Han, at which time a medical history was given to her. Now let the week long testing begin! Monday was a pretty easy day when it came to testing. We both had completed all of our testing for the day by 3:30pm. Testing for the rest of the week lasted until sometimes as late as 5:30pm.
Here is a list of some of the tests that I had preformed;
*Brain/Orbits MRI
*Heart/Abdominal MRI
*DEXA Scan-This is a type of X-ray, which measures the amount of body fat, muscle, bone and compares the numbers.
*A 3 Ophthalmology visit
*A 4 hour Audiology visit (I definately have no problems hearing!)
*Smell Testing- A Scratch-N-Sniff test, where we had to scratch a square and choose from 1 of 4 choices as to what we thought the smell was.
*Sensory Testing-A test to determine how well our nerves in our hands can detect extreme hot, extreme cold and vibration.
Nerve conduction Test.
*EEG/EMG
*Sleep Study (How anyone sleeps comfortable hooked up to all of those wires is beyond me! I sure as heck couldn't.)
*Glucose Tolerance Test- A test used to screen for Diabetes
*Resting Metabolic Rate Test-A plastic helment was placed over our head and our breath was captured and analyzed.
*Nutrition Consultation
*Neurology Consultation
*NeuroPsychological Evaluation
*EKG
*One day for lunch I had to go into a room by myself where there was a buffet aray set up and eat foods of my choice from what was there until I was full. The foods consisted of sandwich makings (ham, turkey, cheese, peanut butter, jelly, lettuce, tomato, condiments), assortment of chips, assortment of fruits, cookies, candy, chicken nuggets, milk, apple juice and water. Probably a few other foods, but I've forgotten. I typically don't eat breakfast or lunch. So one can guess how my part of the meal buffet aray went.
*I had to drink some special water called "Heavy Water" This water cost $400 for 8oz! Yeah, you read that correctly. The water tasted like I had been sucking on a Band-Aid for hours. Yuck! The purpose of this test was to check something to do with energy.
*I had ALOT and I mean ALOT of blood taken to analyzed for specific tests
*I spent 2 entire days peeing in a gallon jug. That was really fun! Yeah right! The urine was also gathered to be tested for specific tests.
*There were a couple of other times in which I had to drink some very yucky stuff (can't remember what the specific test was, but after drinking the yucky stuff, blood and urine samples were collected for testing.)
*Vital signs, including height and weight were obtained every morning.
If there were anymore tests I can't remember, I was rendered brain dead after the 4 hour Audiology visit.
The results to the tests weren't back upon time for us to be discharged from the Clinical Center. Once Dr. Han receives the test results she will pass them on to us.
We are now in the process of making plans for Timmy's visit to NIH in mid November. Looking forward to the visit/

Thursday, August 6, 2009

Hi Ho, Hi Ho Off to NIH We Go

Floyd and I will be leaving in the morning to go to NIH (National Institute of Health), to participate in our portion of the research of WAGR Syndrome (Wilms Tumor-Aniridia-Genitourinary-Retardation). Our flight leaves at 9:30AM. We will be undergoing testing at NiIH from Aug. 10th-14th. We are taking a couple of days to ourselves, before we have to check in at NIH. We desperately need a vacation alone. Just so we can relax and not have to make decisions about Timmy's care. The past couple of months Timmy has had ALOT of surgeries, Doc appointments and hospitalizations. Not to mention our Eye Doc appointments, which have also been out of town. We both feel overwhelmed, exhausted and stressed to the max! So even though our week away we will be poked, prodded, scanned and asked the same questions a million times, we are SOOOO looking forward to our time alone.

Timmy is being left in the best possible care of his Home Health Nurses. We have signed a HIPPA release and left instructions and contact information for us and Timmy's Docs, for the nurses and Timmy's Docs, in case of a medical emergency. By us signing the HIPPA release form, we have given a few of Timmy's nurses the right to speak to Timmy's Docs, seek medical attention if needed and make medical decisions as to any treatment which may be needed. Emily will be staying with MaaMaa and Papa or Aunt Angie and Cousin Tiffany. Zach will be with his dad.

Timmy will participate in his portion of the WAGR syndrome research in mid November. By Flody and I going before Timmy, we will be able to inform the Docs as to which tests Timmy will be able to participate in. This will also give the team a chance to schedule Timmy other appointments, in areas of concern (cardiology).

At the time of the post, Timmy's blood glucose levels have been well under control. The last time that we left Timmy for an extended period of time, his blood glucose levels went wacky. We had to swallow the cost and cut our vacation short by a day and a half. Immediately upon our return home, Timmy's blood glucose levels returned to perfect. Let's see what happend this time! Wanna wager any bets? Just remember Timmy's IS a MaMa's boy!