TISSUE BOUNDARIES AND CELL BEHAVIOR DURING NEURULATION

被引:32
作者
JACOBSON, AG
MOURY, JD
机构
[1] Department of Zoology, Center for Developmental Biology, University of Texas, Austin
[2] Department of Neurobiology and Anatomy, University of Utah School of Medicine, Salt Lake City
关键词
D O I
10.1006/dbio.1995.1263
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
We have analyzed the dynamics of the boundaries between the neural plate and the epidermis and between the neural plate and the notoplate. Our experiments confirm that these two boundaries have important roles in neurulation. Measurements of the lengths of neural fold (the boundary between epidermis and neural plate) in embryos of axolotls and newts reveal that neural folds abutting the prospective brain decrease in length while neural folds abutting the prospective spinal cord increase in length during neurulation. We tested the proposition that boundaries of the neural plate with epidermis and with notoplate are essential for proper neurulation. Cuts made along the boundaries with epidermis or with notoplate stop, or greatly diminish, neural plate elongation and tube formation. Explanting the axolotl neural plate without any bordering epidermis stops plate elongation and prevents neural tube closure, but neural plates explanted with a rim of epidermis elongate and close into tubes. Cutting the notoplate boundary stops midline elongation in the newt embryo or diminishes it in the axolotl embryo. We conclude that the notoplate boundary and part of the boundary of the epidermis that abuts the prospective spinal cord organize cell behavior to elongate the neural plate and help close the neural tube. The boundary of the neural plate with the epidermis is essential for tube closure both because it organizes plate elongation in the spinal cord region and because cell behavior becomes organized at the boundary such that neural folds are raised and a rolling moment is produced that helps form the neural tube. (C) 1995 Academic Press, Inc.
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页码:98 / 110
页数:13
相关论文
共 27 条
[1]  
BURNSIDE B, 1973, AM ZOOL, V13, P989
[2]   MICROTUBULES AND MICROFILAMENTS IN NEWT NEURULATION [J].
BURNSIDE, B .
DEVELOPMENTAL BIOLOGY, 1971, 26 (03) :416-+
[3]   ANALYSIS OF MORPHOGENETIC MOVEMENTS IN NEURAL PLATE OF NEWT TARICHA TOROSA [J].
BURNSIDE, MB ;
JACOBSON, AG .
DEVELOPMENTAL BIOLOGY, 1968, 18 (06) :537-&
[4]   CALCIUM REGULATION OF NEURAL FOLD FORMATION - VISUALIZATION OF THE ACTIN CYTOSKELETON IN LIVING CHICK-EMBRYOS [J].
FERREIRA, MC ;
HILFER, SR .
DEVELOPMENTAL BIOLOGY, 1993, 159 (02) :427-440
[5]  
Hall B. K., 1988, NEURAL CREST
[6]   The breeding of isolated parts of amphibian seeds. II. The breeding of seeds and seed parts in salt solution. [J].
Holtfreter, J .
WILHELM ROUX ARCHIV FUR ENTWICKLUNGSMECHANIK DER ORGANISMEN, 1931, 124 (02) :404-466
[7]  
JACOBSON A, 1985, UCLA S MOL CELL BIOL, V31, P143
[8]   CHANGES IN SHAPE OF DEVELOPING VERTEBRATE NERVOUS-SYSTEM ANALYZED EXPERIMENTALLY, MATHEMATICALLY AND BY COMPUTER-SIMULATION [J].
JACOBSON, AG ;
GORDON, R .
JOURNAL OF EXPERIMENTAL ZOOLOGY, 1976, 197 (02) :191-246
[9]   MORPHOGENESIS OF THE HEAD OF A NEWT - MESODERMAL SEGMENTS, NEUROMERES, AND DISTRIBUTION OF NEURAL CREST [J].
JACOBSON, AG ;
MEIER, S .
DEVELOPMENTAL BIOLOGY, 1984, 106 (01) :181-193
[10]  
JACOBSON AG, 1978, ZOON, V6, P13