A spring-matrix model for pigment translocation in the red ovarian chromatophores of the freshwater shrimp Macrobrachium olfersi (Crustacea, Decapoda)

被引:7
作者
Boyle, Robert Tew [1 ]
McNamara, John Campbell [1 ]
机构
[1] USP, Dept Biol, FFCLRP, Fac Filosofia Ciencias & Letras Ribeirao Preto, BR-14040901 Ribeirao Preto, SP, Brazil
关键词
D O I
10.2307/25066668
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
A model for intracellular transport of pigment granules in the red ovarian chromatophores of the freshwater shrimp Macrobrachium olfersi is proposed on the basis of shifts in the equilibrium of resting forces acting on an elastic pigment matrix. The model describes a pigment-transport mechanism in which mechanochemical protein motors like kinesin and myosin alternately stretch and compress a structurally unified, elastic pigment matrix. Quantifiable properties of the spring-matrix obey Hooke's Law during the rapid phases of pigment aggregation and dispersion. The spring-like response of the pigment mass is estimated from previous kinetic experiments on pigment translocation induced by red pigment concentrating hormone, or by the calcium ionophore A23187. Both translocation effectors trigger an initial phase of rapid pigment aggregation, and their removal or washout after complete aggregation produces a phase of rapid pigment dispersion, followed by slow pigment translocation. The rapid-phase kinetics of pigment transport are in reasonable agreement with Hooke's Law, suggesting that such phases represent the release of kinetic energy, probably produced by the mechanochemical protein motors and stored in the form of matrix deformation during the slow phases of translocation. This semiquantitative model should aid in analyzing intracellular transport systems that incorporate an elastic component.
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页码:111 / 121
页数:11
相关论文
共 44 条
[1]   Association of kinesin and myosin with pigment granules in crustacean chromatophores [J].
Boyle, RT ;
McNamara, JC .
PIGMENT CELL RESEARCH, 2006, 19 (01) :68-75
[2]  
BOYLE RT, 2005, THESIS U SAO PAULO S
[3]   Role of cytoplasmic dynein in melanosome transport in human melanocytes [J].
Byers, HR ;
Yaar, M ;
Eller, MS ;
Jalbert, NL ;
Gilchrest, BA .
JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2000, 114 (05) :990-997
[4]  
DAOLIVEIRA AR, 1996, BRAZ J MED BIOL RES, V29, P1743
[5]   CHROMATOPHORE SYSTEMS IN TELEOSTS AND CEPHALOPODS - A LEVELS ORIENTED ANALYSIS OF CONVERGENT SYSTEMS [J].
DEMSKI, LS .
BRAIN BEHAVIOR AND EVOLUTION, 1992, 40 (2-3) :141-156
[6]   ULTRASTRUCTURE OF CHROMATOPHORES OF CRANGON AND PANDALUS (CRUSTACEA) [J].
ELOFSSON, R ;
KAURI, T .
JOURNAL OF ULTRASTRUCTURE RESEARCH, 1971, 36 (1-2) :263-+
[7]   Interactions and regulation of molecular motors in Xenopus melanophores [J].
Gross, SP ;
Tuma, MC ;
Deacon, SW ;
Serpinskaya, AS ;
Reilein, AR ;
Gelfand, VI .
JOURNAL OF CELL BIOLOGY, 2002, 156 (05) :855-865
[8]   BUTANEDIONE MONOXIME SUPPRESSES CONTRACTION AND ATPASE ACTIVITY OF RABBIT SKELETAL-MUSCLE [J].
HIGUCHI, H ;
TAKEMORI, S .
JOURNAL OF BIOCHEMISTRY, 1989, 105 (04) :638-643
[9]  
Hooke R., 1678, De Potentia Restitutiva
[10]  
JAMINEY PA, 2006, TRENDS CELL BIOL, V16, P538