GENERAL REFERENCES Buckingham L: Molecular diagnostics: fundamentals, methods and clinical applications, ed 2, Philadelphia, 2011, F.[TL:failed]
Davis and Co.[TL:failed]
Clarke A, Murray A, Sampson J: Harper’s practical genetic counselling, ed 8, Boca Raton, 2019, CRC Press. 9780367371944 Gardner RJM, Sutherland GR, Shaffer LG: Chromosome abnormalities and genetic counseling, ed 4, Oxford, 2011, Oxford University Press.[TL:failed]
Le Roy BS, Mc Carthy P, Veach NP: Genetic counseling practice, advanced concepts and skills, ed 2, New York, 2021, Wiley Blackwell.[TL:failed]
Uhlmann WR, Schuette JL, Yashar B: A guide to genetic counseling, ed 2, New York, 2009, Wiley-Liss.[TL:failed]
Young ID: Introduction to risk calculation in genetic counseling, ed 3, New York, 2007, Oxford University Press.[TL:failed]
REFERENCES FOR SPECIFIC TOPICS Alfares A, Aloraini T, Subaie LA, et al: Whole-genome sequencing offers additional but limited clinical utility compared with reanalysis of whole-exome sequencing, Genet Med 20(11):1328–1333, 2019.[TL:failed]
Biesecker LG, Green RC: Diagnostic clinical genome and exome sequencing, N Engl J Med 370:2418–2425, 2014.[TL:failed]
Borle K, Morris E, Inglis A, et al: Risk communication in genetic counseling: exploring uptake an perceptions of recurrence numbers, and their impact on patient outcomes, Clin Genet 94(2): 239–245, 2018.[TL:failed]
Brock JA, Allen VM, Keiser K, et al: Family history screening: use of the three generation pedigree in clinical practice, J Obstet Gynaecol Can 32:663–672, 2010.[TL:failed]
Guttmacher AE, Collins FS, Carmona RH: The family history—more important than ever, N Engl J Med 351:2333–2336, 2004.[TL:failed]
Miller DT, Adam MP, Aradhya S, et al: Consensus statement: chromosomal microarray is a first-tier clinical diagnostic test for individuals with developmental disabilities or congenital anomalies, Am J Hum Genet 86:749–764, 2010.[TL:failed]
Miller DT, Lee K, Chung WK, et al: ACMG SF v 3. 0 list for reporting of secondary findings in clinical exome and genome sequencing: a policy statement of the American College of Medical Genetics and Genomics (ACMG), Genet Med 23(8):1381–1390, 2021. org/10. 1038/s 41436-021-01172-3 National Society of Genetic Counselors: Genetic testing of minors for adult-onset conditions, position statement. org/Policy-Research-and-Publications/Position-Statements/Position- Statements/Post/genetic-testing-of-minors-for-adult-onset-conditions Online Mendelian Inheritance in Man, OMIM®.[TL:failed]
Mc Kusick-Nathans Institute of Genetic Medicine, Johns Hopkins University (Baltimore, MD), {date}.[TL:failed]
World Wide Web.[TL:failed]
Map Posey JE, Rosenfeld JA, James RA, et al: Molecular diagnostic experience of whole-exome sequencing in adult patients, Genet Med 18(7):678–685, 2016.[TL:failed]
Resta R, Biesecker BB, Bennett RL, et al: A new definition of genetic counseling: National Society of Genetic Counselors’ Task Force Report, J Genet Couns 15(2):77–83, 2006.[TL:failed]
Retterer K, Juusola J, Cho MT, et al: Clinical application of whole- exome sequencing across clinical indications, Genet Med 18(7): 696–704, 2016.[TL:failed]
Richards S, Aziz N, Bale S, et al: Standards and guidelines for the interpretation of sequence variants: a joint consensus recommendation of the American College of Medical Genetics and Genomics and the Association for Molecular Pathology, Genet Med Off J Am Coll Med Genet 17(5):405–424, 2015.[TL:failed]
Sheridan E, Wright J, Small N, et al: Risk factors for congenital anomaly in a multiethnic birth cohort: an analysis of the Born in Bradford study, Lancet 382:1350–1359, 2013.[TL:failed]
Yang Y, Muzny DM, Reid JG, et al: Clinical whole-exome sequencing for the diagnosis of mendelian disorders, N Engl J Med 369: 1502–1511, 2013.[TL:failed]
Zhang VW, Wang J: Determination of the clinical significance of an unclassified variant, Methods Mol Biol 837:337–348, 2012.[TL:failed]
PROBLEMS 1.[TL:failed]
Meera’s maternal grandfather, Dhruv, had congenital stationary night blindness (CSNB), which also affected Dhruv’s maternal uncle, Jay; the family history appears to fit an X-linked inheritance pattern.[TL:failed]
(There are also autosomal dominant and recessive forms.) Whether Dhruv’s mother was affected is unknown.[TL:failed]
Meera and Steven have a daughter, Elsie, and sons, Zack and Peter, all unaffected by CSNB.[TL:failed]
Elsie is planning to have children and wonders whether she might be a carrier of a serious eye condition.[TL:failed]
Sketch the pedigree, and answer the following. a.[TL:failed]
What is the chance that Elsie is a carrier of X-linked CSNB? b.[TL:failed]
An ophthalmologist reviews the clinical notes from the affected individuals and considers that they were more likely to have had an autosomal form of the disorder, rather than X-linked.[TL:failed]
There is no evidence that Meera’s mother, Rosemary, was affected.[TL:failed]
On this basis, what is the chance that Elsie is a carrier for an autosomal form of CSNB?[TL:failed]
A deceased boy, Nathan, was the only member of his family with Duchenne muscular dystrophy (DMD).[TL:failed]
He is survived by two sisters, Norma (who has a daughter, Olive) and Nancy (who has a daughter, Odette).[TL:failed]
His mother, Molly, has two sisters, Maud and Martha.[TL:failed]
Martha has two unaffected sons and two daughters, Nora and Nellie.[TL:failed]
Maud has one daughter, Naomi.[TL:failed]
No carrier tests are available because the variant in the affected boy remains unknown. a.[TL:failed]
Sketch the pedigree, and calculate the posterior risks for all these females, using information provided in this chapter. b.[TL:failed]
Suppose prenatal diagnosis by DNA analysis is available only to women with more than a 2% risk that a pregnancy will result in a son with DMD.[TL:failed]
Which of these women would not qualify?[TL:failed]
What is the probability of 13 successive male births?[TL:failed]
What is the probability of 13 successive births of a single sex?[TL:failed]
What is the probability that after 13 male births, the 14th child will be a boy?[TL:failed]
Let H be the population frequency of carriers of hemophilia A.[TL:failed]
The incidence of hemophilia A in males (I) equals the chance that a maternal F8 gene has a new pathogenic variant (µ) plus the chance it was inherited as a preexisting variant from a carrier mother ( 12 × H).[TL:failed]
Adding these two terms gives I = µ + ( 12 × H).[TL:failed]
H is the sum of the chance a reproducing affected father (I × f) (where f is the fitness of hemophilia) transmits his variant plus the chance of a new paternal pathogenic variant (µ) plus the chance of a new maternal pathogenic variant (µ) plus[TL:failed]