Secretory vesicles in live cells are not free-floating but tethered to filamentous structures:: A study using photonic force microscopy

被引:15
作者
Abu-Hamdah, Rania
Cho, Won Jin
Horber, J. K. H.
Jena, Bhanu P.
机构
[1] Wayne State Univ, Sch Med, Dept Physiol, Detroit, MI 48201 USA
[2] Univ Bristol, Dept Phys, Bristol BS8 1TD, Avon, England
关键词
cell secretion; photonic force microscopy; live secretory cells; secretory vesicle tether;
D O I
10.1016/j.ultramic.2006.01.013
中图分类号
TH742 [显微镜];
学科分类号
摘要
It is well established that actin and microtubule cytoskeletal systems are involved in organelle transport and membrane trafficking in cells. This is also true for the transport of secretory vesicles in neuroendocrine cells and neurons. It was however unclear whether secretory vesicles remain free-floating, only to associate with such cytoskeletal systems when needing transport. This hypothesis was tested using live pancreatic acinar cells in physiological buffer solutions, using the photonic force microscope (PFM). When membrane-bound secretory vesicles (0.2-1.2 mu m in diameter) in live pancreatic acinar cells were trapped at the laser focus of the PFM and pulled, they were all found tethered to filamentous structures. Mild exposure of cells to nocodazole and cytochalasin B, disrupts the tether. Immunoblot analysis of isolated secretory vesicles, further demonstrated the association of actin, myosin V, and kinesin. These studies demonstrate for the first time that secretory vesicles in live pancreatic acinar cells are tethered and not free-floating, suggesting that following vesicle biogenesis, they are placed on their own railroad track, ready to be transported to their final destination within the cell when required. This makes sense, since precision and regulation are the hallmarks of all cellular process, and therefore would hold true for the transport and localization of subcellular organelles such as secretory vesicles. (c) 2006 Elsevier B.V. All rights reserved.
引用
收藏
页码:670 / 673
页数:4
相关论文
共 17 条
[1]
BRAIN MYOSIN-V IS A 2-HEADED UNCONVENTIONAL MYOSIN WITH MOTOR-ACTIVITY [J].
CHENEY, RE ;
OSHEA, MK ;
HEUSER, JE ;
COELHO, MV ;
WOLENSKI, JS ;
ESPREAFICO, EM ;
FORSCHER, P ;
LARSON, RE ;
MOOSEKER, MS .
CELL, 1993, 75 (01) :13-23
[2]
Structure, isolation, composition and reconstitution of the neuronal fusion pore [J].
Cho, WJ ;
Jeremic, A ;
Rognlien, KT ;
Zhvania, MG ;
Lazrishvili, I ;
Tamar, B ;
Jena, BP .
CELL BIOLOGY INTERNATIONAL, 2004, 28 (10) :699-708
[3]
Evans LL, 1998, J CELL SCI, V111, P2055
[4]
Kinetic analysis of secretory protein traffic and characterization of Golgi to plasma membrane transport intermediates in living cells [J].
Hirschberg, K ;
Miller, CM ;
Ellenberg, J ;
Presley, JF ;
Siggia, ED ;
Phair, RD ;
Lippincott-Schwartz, J .
JOURNAL OF CELL BIOLOGY, 1998, 143 (06) :1485-1503
[5]
JENA BP, 1991, J BIOL CHEM, V266, P17744
[6]
G(i) regulation of secretory vesicle swelling examined by atomic force microscopy [J].
Jena, BP ;
Schneider, SW ;
Geibel, JP ;
Webster, P ;
Oberleithner, H ;
Sritharan, KC .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1997, 94 (24) :13317-13322
[7]
Vesicle swelling regulates content expulsion during secretion [J].
Kelly, ML ;
Cho, WJ ;
Jeremic, A ;
Abu-Hamdah, R ;
Jena, BP .
CELL BIOLOGY INTERNATIONAL, 2004, 28 (10) :709-716
[8]
ACTIN-DEPENDENT ORGANELLE MOVEMENT IN SQUID AXOPLASM [J].
KUZNETSOV, SA ;
LANGFORD, GM ;
WEISS, DG .
NATURE, 1992, 356 (6371) :722-725
[9]
Interaction of the actin cytoskeleton with microtubules regulates secretory organelle movement near the plasma membrane in human endothelial cells [J].
Manneville, JB ;
Etienne-Manneville, S ;
Skehel, P ;
Carter, T ;
Ogden, D ;
Ferenczi, M .
JOURNAL OF CELL SCIENCE, 2003, 116 (19) :3927-3938
[10]
Pralle A, 1999, MICROSC RES TECHNIQ, V44, P378, DOI 10.1002/(SICI)1097-0029(19990301)44:5<378::AID-JEMT10>3.0.CO