Literature DB >> 10541038

Molecular mechanisms of pigment transport in melanophores.

M C Tuma1, V I Gelfand.   

Abstract

We present an overview of the research on intracellular transport in pigment cells, with emphasis on the most recent discoveries. Pigment cells of lower vertebrates have been traditionally used as a model for studies of intracellular transport mechanisms, because these cells transport pigment organelles to the center or to the periphery of the cell in a highly co-ordinated fashion. It is now well established that both aggregation and dispersion of pigment in melanophores require two elements of the cytoskeleton: microtubules and actin filaments. Melanosomes are moved along these cytoskeletal tracks by motor proteins. Recent studies have identified the motors responsible for pigment dispersion and aggregation in melanophores. We propose a model for the possible roles of the two cytoskeletal transport systems and how they might interact. We also discuss the putative mechanisms of regulation of pigment transport, especially phosphorylation. Last, we suggest areas of research that will receive attention in the future in order to elucidate the mechanisms of organelle transport.

Mesh:

Substances:

Year:  1999        PMID: 10541038     DOI: 10.1111/j.1600-0749.1999.tb00762.x

Source DB:  PubMed          Journal:  Pigment Cell Res        ISSN: 0893-5785


  17 in total

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8.  PTC1 is required for vacuole inheritance and promotes the association of the myosin-V vacuole-specific receptor complex.

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9.  Changes in localization and expression levels of Shroom2 and spectrin contribute to variation in amphibian egg pigmentation patterns.

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