DIRECTED MOVEMENT OF CHROMOSOME ARMS AND FRAGMENTS IN MITOTIC NEWT LUNG-CELLS USING OPTICAL SCISSORS AND OPTICAL TWEEZERS

被引:40
作者
LIANG, H
WRIGHT, WH
RIEDER, CL
SALMON, ED
PROFETA, G
ANDREWS, J
LIU, YG
SONEK, GJ
BERNS, MW
机构
[1] UNIV CALIF IRVINE,BECKMAN LASER INST & MED CLIN,IRVINE,CA 92715
[2] UNIV CALIF IRVINE,DEPT ELECT & COMP ENGN,IRVINE,CA 92717
[3] NEW YORK STATE DEPT HLTH,WADSWORTH CTR LABS & RES,ALBANY,NY 12201
[4] UNIV N CAROLINA,DEPT BIOL,CHAPEL HILL,NC 27599
关键词
D O I
10.1006/excr.1994.1203
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
A pulsed-laser microbeam at 532 nm wavelength (optical scissors) and a laser-induced optical trap at 1064 nm wavelength (optical tweezers) have been successively combined to dissect and manipulate chromosomes in live newt lung epithelial cells. These preliminary experimental results demonstrated that chromosome fragments dissected by laser microbeam surgery, regardless of their size, could be easily pulled or rotated by optical forces when positioned at the periphery of the mitotic spindle. In addition, chromosome arms which were not subjected to laser microsurgery also could be moved with the optical tweezers at the spindle periphery. In our previous study on rat kangaroo kidney cells (PTK2), this degree of facility in manipulating chromosome movement was not possible, most likely due to the close proximity of the intermediate filament ''cage'' to the spindle. It is concluded herein that optical scissors and tweezers can be used in combination to study the interaction of chromosomes with the mitotic spindle in cells where the peripheral regions of the spindle are unobstructed by intermediate filaments. This can be performed on newt cells, where the diameter of the cage can be substantially larger than the diameter Of the spindle. (C) 1994 Academic Press, Inc.
引用
收藏
页码:308 / 312
页数:5
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