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婴儿出生后第一年大细胞和小细胞的发育过程。

Magnocellular and parvocellular developmental course in infants during the first year of life.

作者信息

Hammarrenger Benoit, Leporé Franco, Lippé Sarah, Labrosse Mélanie, Guillemot Jean-Paul, Roy Marie-Sylvie

机构信息

Groupe de Recherche en Neuropsychologie Expérimentale, Département de Psychologie, Université de Montréal, Canada.

出版信息

Doc Ophthalmol. 2003 Nov;107(3):225-33. doi: 10.1023/b:doop.0000005331.66114.05.

DOI:10.1023/b:doop.0000005331.66114.05
PMID:14711154
Abstract

The visual system undergoes major modifications during the first year of life. We wanted to examine whether the magnocellular (M) and parvocellular (P) pathways mature at the same rate or if they follow a different developmental course. A previous study carried out in our laboratory had shown that the N1 and P1 components of pattern visual evoked potentials (PVEPs) were preferentially related to the activity of P and M pathways, respectively. In the present study, PVEPs were recorded at Oz in 33 infants aged between 0 and 52 weeks, in response to two spatial frequencies (0.5 and 2.5 c deg(-1)) presented at four contrast levels (4, 12, 28 and 95%). Results indicate that the P1 component appeared before the N1 component in the periods tested and was unambiguously present at birth. The P1 component showed a rapid gain in amplitude in the following months, to reach a ceiling around 4-6 months. Conversely, the N1 component always appeared later and then gained in amplitude until the end of the first year without reaching a plateau. Latencies were also computed but no developmental dissociation was revealed. Results obtained on amplitude are interpreted as demonstrating a developmental dissociation between the underlying M and P pathways, suggesting that the former is functional earlier and matures faster than the latter during the first year of life.

摘要

视觉系统在生命的第一年经历重大变化。我们想研究大细胞(M)和小细胞(P)通路是否以相同速度成熟,或者它们是否遵循不同的发育进程。我们实验室之前进行的一项研究表明,图形视觉诱发电位(PVEPs)的N1和P1成分分别优先与P和M通路的活动相关。在本研究中,对33名年龄在0至52周之间的婴儿在Oz处记录PVEPs,以响应在四个对比度水平(4%、12%、28%和95%)呈现的两个空间频率(0.5和2.5 c deg(-1))。结果表明,在测试期间,P1成分先于N1成分出现,并且在出生时就明确存在。P1成分在接下来的几个月中振幅迅速增加,在4至6个月左右达到峰值。相反,N1成分总是出现得较晚,然后振幅增加,直到第一年末都没有达到平稳状态。还计算了潜伏期,但未发现发育上的分离。关于振幅的结果被解释为表明潜在的M和P通路之间存在发育分离,这表明在生命的第一年,前者功能更早出现且成熟速度比后者更快。

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2
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Vision Res. 2001 Jun;41(14):1791-807. doi: 10.1016/s0042-6989(01)00070-0.
3
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Clin Ophthalmol. 2024 Aug 21;18:2327-2335. doi: 10.2147/OPTH.S470504. eCollection 2024.
4
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5
Differential functional reorganization of ventral and dorsal visual pathways following childhood hemispherectomy.儿童期大脑半球切除术后腹侧和背侧视觉通路的差异性功能重组
bioRxiv. 2023 Aug 5:2023.08.03.551494. doi: 10.1101/2023.08.03.551494.
6
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Mol Neurobiol. 2023 Jul;60(7):4120-4131. doi: 10.1007/s12035-023-03332-9. Epub 2023 Apr 11.
7
The Brainstem-Informed Autism Framework: Early Life Neurobehavioral Markers.脑干信息自闭症框架:早期生命神经行为标志物
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9
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Front Hum Neurosci. 2017 Oct 9;11:486. doi: 10.3389/fnhum.2017.00486. eCollection 2017.
Dyslexia. 2001 Jan-Mar;7(1):12-36. doi: 10.1002/dys.186.
4
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Vis Neurosci. 2000 Nov-Dec;17(6):831-7. doi: 10.1017/s0952523800176023.
5
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Doc Ophthalmol. 1999;99(1):21-39. doi: 10.1023/a:1002414803226.
6
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Vision Res. 1999 Nov;39(22):3673-80. doi: 10.1016/s0042-6989(99)00091-7.
7
Developmental profiles of SMI-32 immunoreactivity in monkey striate cortex.猴纹状皮层中SMI-32免疫反应性的发育概况。
Brain Res Dev Brain Res. 2000 Jan 3;119(1):85-95. doi: 10.1016/s0165-3806(99)00162-5.
8
Infant temporal contrast sensitivity functions (tCSFs) mature earlier for luminance than for chromatic stimuli: evidence for precocious magnocellular development?婴儿的颞叶对比敏感度函数(tCSFs)在亮度方面比在颜色刺激方面成熟得更早:大细胞发育早熟的证据?
Vision Res. 1999 Sep;39(19):3223-39. doi: 10.1016/s0042-6989(99)00020-6.
9
Development of the spatio-chromatic visual evoked potential (VEP): a longitudinal study.空间色觉诱发电位(VEP)的发展:一项纵向研究。
Vision Res. 1998 Nov;38(21):3283-92. doi: 10.1016/s0042-6989(98)00074-1.
10
Development of pattern visual evoked potentials: longitudinal measurements in human infants.
Optom Vis Sci. 1997 Oct;74(10):808-15. doi: 10.1097/00006324-199710000-00020.