Abstract
Patients with the rare genetic disorders, xeroderma pigmentosum (XP), trichothiodystrophy (TTD) and Cockayne syndrome (CS) have defects in DNA nucleotide excision repair (NER). The NER pathway involves at least 28 genes. Three NER genes are also part of the basal transcription factor, TFIIH. Mutations in 11 NER genes have been associated with clinical diseases with at least eight overlapping phenotypes. The clinical features of these patients have some similarities but also have marked differences. NER is involved in protection against sunlight-induced DNA damage. While XP patients have 1000-fold increase in susceptibility to skin cancer, TTD and CS patients have normal skin cancer risk. Several of the genes involved in NER also affect somatic growth and development. Some patients have short stature and immature sexual development. TTD patients have sulfur deficient brittle hair. Progressive sensorineural deafness is an early feature of XP and CS. Many of these clinical diseases are associated with developmental delay and progressive neurological degeneration. The main neuropathology of XP is a primary neuronal degeneration. In contrast, CS and TTD patients have reduced myelination of the brain. These complex neurological abnormalities are not related to sunlight exposure but may be caused by developmental defects as well as faulty repair of DNA damage to neuronal cells induced by oxidative metabolism or other endogenous processes.
MeSH Terms
Brain Diseases, Metabolic, Inborn/genetics,metabolism,physiopathology
Cockayne Syndrome/genetics,metabolism,physiopathology
DNA Damage/genetics
DNA Repair/genetics
Heredodegenerative Disorders, Nervous System/genetics,metabolism,physiopathology
Humans
Mutation/genetics
Phenotype
Skin Diseases, Genetic/genetics,metabolism,physiopathology
Xeroderma Pigmentosum/genetics,metabolism,physiopathology
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Kraemer K H
DNA Repair Section, Basic Research Laboratory, Center for Cancer Research, National Cancer Institute, Building 37 Room 4002 MSC 4258, Bethesda, MD 20892-4258, USA.
[email protected]
Patronas N J
Schiffmann R
Brooks B P
Tamura D
DiGiovanna J J
References (21)
21 references, click to expand
-
Trichothiodystrophy: update on the sulfur-deficient brittle hair syndromes.
J Am Acad Dermatol. 2001 Jun;44(6):891-920; quiz 921-4
PMID: 11369901
-
The oxidative DNA lesion 8,5'-(S)-cyclo-2'-deoxyadenosine is repaired by the nucleotide excision repair pathway and blocks gene expression in mammalian cells.
J Biol Chem. 2000 Jul 21;275(29):22355-62
PMID: 10801836
-
Xeroderma pigmentosum/cockayne syndrome complex: first neuropathological study and review of eight other cases.
Eur J Paediatr Neurol. 2001;5(6):225-42
PMID: 11764181
-
Ocular manifestations in the inherited DNA repair disorders.
Surv Ophthalmol. 2003 Jan-Feb;48(1):107-22
PMID: 12559331
-
The transcriptional response after oxidative stress is defective in Cockayne syndrome group B cells.
Oncogene. 2003 Feb 27;22(8):1135-49
PMID: 12606941
-
Basal transcription defect discriminates between xeroderma pigmentosum and trichothiodystrophy in XPD patients.
Mol Cell. 2003 Jun;11(6):1635-46
PMID: 12820975
-
From proteomics to disease.
Nat Genet. 2004 Jul;36(7):677-8
PMID: 15226750
-
Xeroderma pigmentosum. An inherited diseases with sun sensitivity, multiple cutaneous neoplasms, and abnormal DNA repair.
Ann Intern Med. 1974 Feb;80(2):221-48
PMID: 4811796
-
Trichothiodystrophy: sulfur-deficient brittle hair as a marker for a neuroectodermal symptom complex.
Arch Dermatol. 1980 Dec;116(12):1375-84
PMID: 7458366
-
Xeroderma pigmentosum. Cutaneous, ocular, and neurologic abnormalities in 830 published cases.
Arch Dermatol. 1987 Feb;123(2):241-50
PMID: 3545087
-
Neurological disease in xeroderma pigmentosum. Documentation of a late onset type of the juvenile onset form.
Brain. 1991 Jun;114 ( Pt 3):1335-61
PMID: 2065254
-
Clinically asymptomatic xeroderma pigmentosum neurological disease in an adult: evidence for a neurodegeneration in later life caused by defective DNA repair.
Eur Neurol. 1993;33(3):188-90
PMID: 8467834
-
Cockayne syndrome: review of 140 cases.
Am J Med Genet. 1992 Jan 1;42(1):68-84
PMID: 1308368
-
The role of sunlight and DNA repair in melanoma and nonmelanoma skin cancer. The xeroderma pigmentosum paradigm.
Arch Dermatol. 1994 Aug;130(8):1018-21
PMID: 8053698
-
Xeroderma pigmentosum and the role of UV-induced DNA damage in skin cancer.
Mol Med Today. 1999 Feb;5(2):86-94
PMID: 10200950
-
A summary of mutations in the UV-sensitive disorders: xeroderma pigmentosum, Cockayne syndrome, and trichothiodystrophy.
Hum Mutat. 1999;14(1):9-22
PMID: 10447254
-
Characterization of tiger-tail banding and hair shaft abnormalities in trichothiodystrophy.
J Am Acad Dermatol. 2005 Feb;52(2):224-32
PMID: 15692466
-
Cockayne syndrome A and B proteins differentially regulate recruitment of chromatin remodeling and repair factors to stalled RNA polymerase II in vivo.
Mol Cell. 2006 Aug;23(4):471-82
PMID: 16916636
-
Structural and molecular hair abnormalities in trichothiodystrophy.
J Invest Dermatol. 2006 Oct;126(10):2210-6
PMID: 16728971
-
Cockayne syndrome and xeroderma pigmentosum.
Neurology. 2000 Nov 28;55(10):1442-9
PMID: 11185579
-
Mutations in the general transcription factor TFIIH result in beta-thalassaemia in individuals with trichothiodystrophy.
Hum Mol Genet. 2001 Nov 15;10(24):2797-802
PMID: 11734544