Genetics of crystallins: Cataract and beyond

被引:234
作者
Graw, Jochen [1 ]
机构
[1] Helmholtz Ctr Munich, German Res Ctr Environm Hlth, Inst Dev Genet, D-85764 Neuherberg, Germany
关键词
crystallin; lens; evolution; cataract; gene expression; inherited disease; ALPHA-B-CRYSTALLIN; BETA-GAMMA-CRYSTALLIN; AUTOSOMAL RECESSIVE CATARACT; CONGENITAL NUCLEAR CATARACT; HEAT-SHOCK PROTEINS; POSTERIOR POLAR CATARACT; BLIND MOLE-RAT; A-CRYSTALLIN; DOMINANT CATARACT; NONSENSE MUTATION;
D O I
10.1016/j.exer.2008.10.011
中图分类号
R77 [眼科学];
学科分类号
100212 ;
摘要
The crystallins were discovered more than 100 years ago by Morner (1893. Untersuchungen der Proteinsubstanzen in den lichtbrechenden Medien des Auges. Z. Physiol. Chem. 18, 61-106) as the main structural proteins of the vertebrate eye lens. Since that time the major mammalian crystallins referred to as alpha-, beta-, and gamma-crystallins were characterized with respect to their genetic organization, regulation of their expression pattern and participation in several diseases. In recent years, more and more crystallins have also been identified outside the lens. Evolutionary analysis has demonstrated the relationship of crystallins to proteins involved in protection against stress. The alpha-crystallins form large complexes up to 1 Mio Da: they are built up by two subunits referred to as alpha A- and alpha B-crystallins. These subunits are encoded by individual genes, Cryaa and Cryab being localized on different chromosomes and members of the small heat-shock protein family. The alpha A-crystallin is considered to be a molecular chaperone. It is expressed mainly in the lens - mutations in the Cryaa gene lead to recessive or dominant cataracts. In contrast, the alpha B-crystallin is rather ubiquitously expressed; mutations in the Cryab gene are associated with a broad variety of neurological, cardiac and muscular disorders. The beta/gamma-crystallin super family is encoded by at least 14 genes: the proteins are characterized by four Greek key motifs. In mammals, these genes are not only organized as individual genes (Cryba 1, Cryba2, Ctygf, Crygs, CrygN), but also in duplets (Cryba4-Crybb1 and Crybb2-Crybb3) and in one major cluster (Cryga-Cryge). The various Cryb and Cryg genes are considered to have been evolved by various duplications of the Greek key encoding units. The two main families are distinguished by the fact that each Greek key motif in the Cryb genes is encoded by one exon, whereas two motifs are encoded by one single exon in the Cryg genes. An intermediate between these subfamilies is CrygN encoding the first two Greek key motifs by individual exons, but the others by one single exon. Mutations in the Cryb/Cryg genes lead mainly to an opacification of the eye lens. In some Cryg mutants evidence was presented that the formation of large amyloid-like intranuclear inclusions containing the altered gamma-crystallins is a key event in cataract formation. Cataract formation, caused by Cryg mutations is further characterized by stopping the secondary lens fiber differentiation as indicated by the presence of remnants of cell nuclei, which are usually degraded in secondary fiber cells. Moreover, additional clinical features are being increasingly reported since these crystallins are found outside the eye: the beta 2-crystallin (previously referred to the basic principle crystallin) is also involved in neurogenesis and male infertility. For some of the beta/gamma-crystallins, Ca2+-binding properties have been discussed; however, it is an unsolved question whether these crystalims serve as Ca2+ stores in vivo. Enzyme crystallins are enzymes, which have been recruited to the lens and are expressed there in high concentrations. The mu- and zeta-crystallins (gene symbols: Crym and Cryz, respectively) are discussed as examples for mammals. Mutations in the human CRYM gene lead to non-syndromic deafness, and mutations in the Cryz gene of guinea pigs cause cataracts. (C) 2008 Elsevier Ltd. All rights reserved.
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页码:173 / 189
页数:17
相关论文
共 194 条
[1]   Identification of CRYM as a candidate responsible for nonsyndromic deafness, through cDNA microarray analysis of human cochlear and vestibular tissues [J].
Abe, S ;
Katagiri, T ;
Saito-Hisaminato, A ;
Usami, S ;
Inoue, Y ;
Tsunoda, T ;
Nakamura, Y .
AMERICAN JOURNAL OF HUMAN GENETICS, 2003, 72 (01) :73-82
[2]   Crystallins in the eye: Function and pathology [J].
Andley, Usha P. .
PROGRESS IN RETINAL AND EYE RESEARCH, 2007, 26 (01) :78-98
[3]   Ancestral beta gamma-crystallin precursor structure in a yeast killer toxin [J].
Antuch, W ;
Guntert, P ;
Wuthrich, K .
NATURE STRUCTURAL BIOLOGY, 1996, 3 (08) :662-665
[4]   GDF6, a novel locus for a spectrum of ocular developmental anomalies [J].
Asai-Coakwell, Mika ;
French, Curtis R. ;
Berry, Karyn M. ;
Ye, Ming ;
Koss, Ron ;
Somerville, Martin ;
Mueller, Rosemary ;
van Heyningen, Veronica ;
Waskiewicz, Andrew J. ;
Lehmann, Ordan J. .
AMERICAN JOURNAL OF HUMAN GENETICS, 2007, 80 (02) :306-315
[5]  
Augusteyn Robert C, 2004, Clin Exp Optom, V87, P356
[6]   Mutations of the PAX6 gene detected in patients with a variety of optic-nerve malformations [J].
Azuma, N ;
Yamaguchi, Y ;
Handa, H ;
Tadokoro, K ;
Asaka, A ;
Kawase, E ;
Yamada, M .
AMERICAN JOURNAL OF HUMAN GENETICS, 2003, 72 (06) :1565-1570
[7]   Gene conversion mutation in crystallin, β-B2 (CRYBB2) in a Chilean family with autosomal dominant cataract [J].
Bateman, J. Bronwyn ;
von-Bischhoffshaunsen, Fernando R. Barria ;
Richter, Leslie ;
Flodman, Pamela ;
Burch, Douglas ;
Spence, M. Anne .
OPHTHALMOLOGY, 2007, 114 (03) :425-432
[8]  
Bateman JB, 2000, INVEST OPHTH VIS SCI, V41, P3278
[9]   New phenotype associated with an Arg116Cys mutation in the CRYAA gene -: Nuclear cataract, iris coloboma, and microphthalmia [J].
Beby, Francis ;
Commeaux, Claire ;
Bozon, Muriel ;
Denis, Philippe ;
Edery, Patrick ;
Morle, Laurette .
ARCHIVES OF OPHTHALMOLOGY, 2007, 125 (02) :213-216
[10]   Alpha-b crystallin gene (CRYAB) mutation causes dominant congenital posterior polar cataract in humans [J].
Berry, V ;
Francis, P ;
Reddy, MA ;
Collyer, D ;
Vithana, E ;
MacKay, I ;
Dawson, G ;
Carey, AH ;
Moore, A ;
Bhattacharya, SS ;
Quinlan, RA .
AMERICAN JOURNAL OF HUMAN GENETICS, 2001, 69 (05) :1141-1145