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Familial Cerebral Aneurysms

Published online by Cambridge University Press:  18 September 2015

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Abstract:

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Familial cerebral aneurysms are currently the subject of burgeoning interest. We review the pertinent, recent reports on this topic in the light of our study of 17 families with familial cerebral aneurysms. The prevalence of familial cerebral aneurysms ranges from 5-28%. The sex distribution displays a female bias. Mothers are more often affected than fathers and daughters more than sons. There is no site predilection for familial cerebral aneurysms but they tend to occur at the same (or mirror) site within families. The age at rupture of familial cerebral aneurysms is younger, especially in females, than for sporadic aneurysms. They tend to rupture within the same decade in families, and within five years of each other in identical twins. The size of ruptured familial cerebral aneurysms appears to be smaller, especially in women, than sporadic aneurysms. The pattern of inheritance is unknown. A poor outcome of rupture is more frequent in familial cerebral aneurysms cases than in sporadic ones. Angiographic screening of family members at risk, especially first degree relatives, appears justified.

Type
Review Article
Copyright
Copyright © Canadian Neurological Sciences Federation 1997

References

REFERENCES

1.Yoshimoto, B. Blood and Water. In: Lizard, Washington Square Press, New York, 1993: 93121.Google Scholar
2.Stehbens, WE. Review article. Etiology of intracranial berry aneurysms. J Neurosurg. 1989: 70–823.Google Scholar
3.Forbus, WD. On the origin of the miliary aneurysm of the superficial cerebral arteries. Bull Johns Hopkins Hosp. 1930; 239284.Google Scholar
4.Lozano, AM, Leblanc, R. Familial intracranial aneurysms. J Neurosurgery. 1987; 66: 522528.CrossRefGoogle ScholarPubMed
5.Norrgård, OÄngquist, K-A, Fodstad, HForsell, Å, Lindberg, M. Intracranial aneurysms and heredity. Neurosurgery 1987; 20: 236239.Google Scholar
6.Leblanc, R, Melanson, D, Tampieri, D, Guttmann, RD. Familial cerebral aneurysms: a study of 13 families. Neurosurgery 1995; 37: 633639.CrossRefGoogle ScholarPubMed
7.Ronkainen, A, Hernesniemi, J, Tromp, G. Special features of familial intracranial aneurysms: report of 215 familial aneurysms. Neurosurgery 1995; 37: 4347.(?1993)Google Scholar
8.Wang, PS, Lonstretch, WT, Koepsell, TD.Subarachnoid hemorrhage and family history. Arch Neurol 1995; 52: 202204.CrossRefGoogle ScholarPubMed
9.Schievink, WI, Schaid, DJ, Michels, VV. Piepgras DG. Familial aneurysmal subarachnoid hemorrhage: a community based study. J Neurosurg 1995; 83: 426429.CrossRefGoogle ScholarPubMed
10.Bromberg, JEC, Rinkel, GJE, Algra, A, Greebe, P. Subarachnoid hemorrhage in first and second degree relatives of patients with subarachnoid hemorrhage. Br Med J 1995; 311: 288289.Google Scholar
11.Bromberg, JEC, Rinkel, JE, Algra, A, etal. Familial subarachnoid hemorrhage: distinctive features and patterns of inheritance. Ann Neurol 1995; 38: 929934.Google Scholar
12.Mathieu, J, Pérusse, L, Allard, P, etal. Epidemiological study of ruptured intracranial aneurysms in the Saguenay-Lac St-Jean region (Québec, Canada). Can J Neurol Sci 1996; 23: 184188.Google Scholar
13.De Braekeleer, M, Pérusse, L, Bouchard, J-M, Mathieu, J. A study of inbreeding and kinship in intracranial aneurysms in the Saguenay-Lac St-Jean region (Québec, Canada). Ann Hum Genet 1996; 60: 99104.Google Scholar
14.Leblanc, R. Familial cerebral aneurysms: a bias for women. Stroke 1996; 27: 10501054.Google Scholar
15.O’Brien, JG. Subarachnoid haemorrhage in identical twins. Br Med J 1942; 1: 607609.Google Scholar
16.Brisman, R, Abbassioun, K. Familial intracranial aneurysms. J Neurosurg 1971; 34: 678682.CrossRefGoogle ScholarPubMed
17.Fairburn, B. ‘Twin’ intracranial aneurysms causing subarachnoid haemorrhage in identical twins. Br Med J 1973; 1: 210211.Google Scholar
18.Schon, F, Marshall, J. Subarachnoid haemorrhage in identical twins. J Neurol Neurosurg Psychiatry 1984; 47: 8183.Google Scholar
19.Weil, SM, Olivi, A, Greiner, AL, Tobler, WD. Multiple intracranial aneurysms in identical twins. Acta Neurochir (Wien) 1988; 95: 121125.Google Scholar
20.Parekh, HCGurusinghe, NT, Sharma, RR. Cerebral berry aneurysms in identical twins: a case report. Surg Neurol 1992; 38: 277279.CrossRefGoogle ScholarPubMed
21.Wilson, PJE, Cast, IP. ‘Twin’ intracranial aneurysms. Br Med J 1973; 1: 484.Letter.Google Scholar
22.Wakabayaski, TFujita, SOhbora, Y, etal.Polycystic kidney disease and intracranial aneurysms. Early angiographic diagnosis and early operation for the unruptured aneurysm. J Neurosurg 1983; 58: 488491.Google Scholar
23.Lozano, AM, Leblanc, R. Cerebral aneurysms and polycystic kidney disease: a critical review. Can J Neurol Sci 1992; 19: 222227.Google Scholar
24.Schievink, WI, Torres, VE, Piepgras, DG, Wiebers, DO, Saccular intracranial aneurysms in autosomal dominant polycystic kidney disease. J Am Soc Nephrol 1992; 3: 8895.Google Scholar
25.Leblanc, R. Heredity and etiology of intracranial berry aneurysms. Stroke 1997;letter in press.Google Scholar
26.Bromberg, JEC, Rinkel, GHE, Algra, A, Limburg, NVan Gijn, J. Outcome in familial subarachnoid hemorrhage. Stroke 1995; 26: 961963.Google Scholar
27.Ronkainen, A, Puranen, MI, Hernesnigmi, JA, etal.Intracranial aneurysms, MR angiographic screening in 400 asymptomatic individuals with increased familial risk. Radiology 1995; 195: 3540.CrossRefGoogle ScholarPubMed
28.Tampieri, D, Leblanc, R, Oliszek, J, etal.3-D CT angiography of cerebral aneurysms. Neurosurgery 1995; 36: 749755.Google Scholar
29.Dippel, DWJ, ter Berg, JWM, Habbena, JDF. Screening for unruptured familial intracranial aneurysms. A decision analysis. Acta Neurol Scand 1992; 86: 381389.CrossRefGoogle ScholarPubMed
30.Leblanc, R, Worsley, KJ, Melanson, KJ, Tampieri, D. Angiographic screening and elective surgery of familial cerebral aneurysms: a decision analysis. Neurosurgery 1994; 35: 914.Google Scholar
31.Saltzmann, GF. Infundibular widening of the posterior communicating artery studies by carotid angiography. Acta Radiol 1959; 51: 415421.Google Scholar
32.Edelsohn, L, Caplan, L, Rosenbaum, AE. Familial aneurysm and infundibular widening. Neurology 1972; 22: 10561060.Google Scholar
33.Hassler, O, Saltzmann, GH. Angiographic and histological changes in infundibular widening of the posterior communicating artery. Acta Radiol [Diagn] (Stockh) 1963; 1: 321327.Google Scholar
34.Epstein, F, Ransohoff, J, Budzilovich, GB. The clinical significance of junctional dilatation of the posterior communicating artery. J Neurosurg 1970; 33: 529531.CrossRefGoogle ScholarPubMed
35.Appleby, PD. Infundibular widening of the posterior communicating artery progressing to true aneurysm. Br J Radiol 1983; 56: 5960.Google Scholar
36.Finney, HL, Roberts, TS, Anderson, RE. Anderson RE. Giant intracranial aneurysm associated with Marfan’s syndrome. Case report. J Neurosurg 1976; 45: 342347.Google Scholar
37.Fox, JL. Intracranial Aneurysms. New York: Springer-Verlag, 1983; Vol 1: pp 406408.Google Scholar
38.Rubinstein, MK, Cohen, NH. Ehlers-Danlos syndrome associated with multiple intracranial aneurysms. Neurology 1964; 14: 125132.Google Scholar
39.Kissel, P, Arnould, G, André, JM. Incidences des accidents vascular cérébraux au cours des conjonctivo-dysplasies héréditaires. J Gent Hum 1972; 20: 151167.Google Scholar
40.Schievink, WI, Schaid, J, Rogers, JM, Piepgras, DG, Nichels, W. On the inheritance of intracranial aneurysms. Stroke 1994; 25: 20282037.Google Scholar
41.Leblanc, R, Lozano, AM. Grave’s disease and subarachnoid hemorrhage: a possible familial association. Can J Neurol Sci 1987; 14: 638641.Google ScholarPubMed
42.Neil-Dwyer, G, Barlett, JR, Nicholls, AC, et al. Collagen deficiency and ruptured cerebral aneurysms. A clinical and biochemical study. J Neurosurg 1983; 59: 1620.CrossRefGoogle ScholarPubMed
43.Leblanc, R, Lozano, AM, Van der Rest, M, Guttmann, RD. Absence of collagen deficiency in familial cerebral aneurysms. J Neurosurg 1989; 70: 837840.Google Scholar
44.Kuivaniemi, H, Prockop, DJ, Wu, U, et al. Exclusion of mutations in the gene for type III collagen (COL3A1) as a common cause of intracranial aneurysms or cervical artery dissections by sequence analysis of coding sequence of type III collagen in 55 unrelated patients. Neurology 1993; 43: 26522658.Google Scholar
45.Ostergaard, JR, Bruun-Petersen, G, Lamm, LU. HLA antigens and complement types in patients with intracranial saccular aneurysms. Tissue Antigens 1986; 28: 176181.Google Scholar
46.Norrgård, O, Beckman, GBeckman, Let al. Genetic markers in patients with intracranial aneurysms. Hum Hered 1987; 37: 225259.Google ScholarPubMed
47.Mellergård, P, Ljunggren, B, Brandt, L, Johnson, UHoltås, S. HLA-typing in a family with six intracranial aneurysms. Br J Neurosurg 1989; 3: 479486.CrossRefGoogle Scholar
48.Cantin, L, Mathieu, J, Debraekeleer, M, Vigneault, A. Anévrysmes intrâcraniens familiaux: etudé de 9 families saguenéenes. Can J Neurol Sci 1988; 15: 94 (Abstr).Google Scholar
49.Longstreet, WT, Koepsell, TD, Yerby, MS, Van Belle, G. Risk factors for subarachnoid hemorrhage. Prog Rev Stroke 1985; 16: 377385.CrossRefGoogle Scholar
50.Schievink, WI, Katzmann, JA, Piepgras, DG, Schaid, DJ. Alpha-1-antitrypsan phenotypes among patients with intracranial aneurysms. J Neurosurg 1996; 84: 781784.Google Scholar