Genetic determination of neurophysiological mechanisms of cortical-subcortical integration of bioelectrical brain activity

被引:4
作者
Ivonin A.A. [1 ]
Tsitseroshin M.N. [2 ]
Pogosyan A.A. [2 ]
Shuvaev V.T. [1 ]
机构
[1] I. P. Pavlov Institute of Physiology, Russian Academy of Sciences, 199034 St. Petersburg
[2] I. M. Sechenov Inst. Evol. Physiol., Russian Academy of Sciences, 194223 St. Petersburg
基金
俄罗斯基础研究基金会;
关键词
Bioelectrical activity; Brain; Genetics; Humans;
D O I
10.1023/B:NEAB.0000018749.36457.d9
中图分类号
学科分类号
摘要
The contribution of genetic factors to the formation of the neurophysiological mechanisms of cortical-subcortical integration was studied in 12 pairs of monozygotic and five pairs of dizygotic twins (aged 18-25 years). Intrapair similarity of the nature of spatial interactions between bioelectrical activity in the cerebral cortex, assessed from different combinations of statistical interactions of EEG from 16 monopolar recordings, was assessed in each pair of twins (and among 544 non-related pairs of subjects in both groups). The results suggest a high level of general population invariance and relatively small inherited and phenotypic variability in the morphofunctional systems making up the major neurophysiological mechanisms of brain integration as a whole. The ontogenetic formation of stem and subcortical regulatory structures, which have a leading role in the systems combination of different parts of the brain into a single formation, appears to occur in all individuals by the same principle, as disturbance can apparently affect the fundamental monomorphic features of the species. In turn, we might expect to find large interindividual variability in the establishment of interregional connections of the neocortex, the role of inherited and environmental factors being different in the processes forming long and relatively short intercortical interactions. © 2004 Plenum Publishing Corporation.
引用
收藏
页码:369 / 378
页数:9
相关论文
共 29 条
  • [1] Adrianov O.S., Organizational Principles of Integrative Brain Activity, (1976)
  • [2] Adrianov O.S., Brain architecture and the individuality of personality (identification of questions), Usp. Fiziol. Nauk., 4, 3, pp. 25-39, (1993)
  • [3] Anokhin A.P., Genetic bases of the neurophysiological characteristics of humans, Advances in Contemporary Genetics, pp. 206-231, (1987)
  • [4] Batuev A.S., Higher Integrative Systems of the Brain, (1981)
  • [5] Dzugaeva S.B., Systems Genesis of the Conducting Pathways in the Human Brain. Systems Genesis and Questions in Brain Genetics, pp. 102-116, (1983)
  • [6] Zhambyu M., Hierarchical Cluster Analysis and Correspondence, (1988)
  • [7] Mukhin E.I., Structural-Functional and Psychological Bases of Complex Forms of Behavior, (1990)
  • [8] Ravich-Shcherbo I.V., Maryutina T.M., Grigor'eva E.P., Psychogenetics, (1999)
  • [9] Sviderskaya N.E., Korol'kova T.A., Genetic features of the spatial organization of the electrical activity of the human cerebral cortex, Zh. Vyssh. Nerv. Deyat., 44, 4-5, pp. 640-649, (1994)
  • [10] Tolkunov V.B., The Striatum and Sensory Specialization of Neural Networks, (1978)