Literature DB >> 3109982

Cellular localization of HSP23 during Drosophila development and following subsequent heat shock.

A P Arrigo.   

Abstract

The low-molecular-weight heat-shock protein HSP23 is synthesized in the absence of heat shock during Drosophila development. Here, I present a quantitative analysis of this phenomenon and describe the cellular localization of this protein during normal development and after a subsequent heat shock. HSP23 is first detected in the late third instar larvae and continues to accumulate reaching a maximum level in late pupae. In a 1-week-old adult, HSP23 can no longer be detected. Following lysis of whole pupae, HSP23 is found in the soluble lysate fraction in a form which sediments between 10 and 20 S. Exposure of larvae, pupae, and the adult fly to heat stress (37 degrees C) results in an increased amount of HSP23 which, however, is recovered in an insoluble particulate form following insect lysis. During recovery from heat shock, HSP23 is again found in the soluble 10- to 20-S lysate fraction. In pupae which are exposed to a severe heat stress (41 degrees C) HSP23 remains in the pellet fraction after the heat stress and no pupae are able to emerge as adult flies. However, when pupae are first exposed to a mild heat-shock treatment prior to the 41 degrees C stress, the thermotolerance process is induced and HSP23 is again rapidly found in the soluble lysate fraction during the recovery from heat shock. These observations suggest a possible correlation between the survival of pupae after heat shock and the recovery of HSP23 in the soluble lysate fraction as 10- to 20-S structures after the heat shock.

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Year:  1987        PMID: 3109982     DOI: 10.1016/0012-1606(87)90330-7

Source DB:  PubMed          Journal:  Dev Biol        ISSN: 0012-1606            Impact factor:   3.582


  13 in total

Review 1.  The structure and function of small heat shock proteins: analysis of the Saccharomyces cerevisiae Hsp26 protein.

Authors:  M F Tuite; N J Bentley; P Bossier; I T Fitch
Journal:  Antonie Van Leeuwenhoek       Date:  1990-10       Impact factor: 2.271

2.  Messenger RNA-binding properties of nonpolysomal ribonucleoproteins from heat-stressed tomato cells

Authors: 
Journal:  Plant Physiol       Date:  1999-05       Impact factor: 8.340

Review 3.  Translational control of cellular and viral mRNAs.

Authors:  D R Gallie
Journal:  Plant Mol Biol       Date:  1996-10       Impact factor: 4.076

4.  Dynamic changes in the structure and intracellular locale of the mammalian low-molecular-weight heat shock protein.

Authors:  A P Arrigo; J P Suhan; W J Welch
Journal:  Mol Cell Biol       Date:  1988-12       Impact factor: 4.272

5.  Cytoplasmic heat shock granules are formed from precursor particles and are associated with a specific set of mRNAs.

Authors:  L Nover; K D Scharf; D Neumann
Journal:  Mol Cell Biol       Date:  1989-03       Impact factor: 4.272

6.  Maternal loading of a small heat shock protein increases embryo thermal tolerance in Drosophila melanogaster.

Authors:  Brent L Lockwood; Cole R Julick; Kristi L Montooth
Journal:  J Exp Biol       Date:  2017-11-02       Impact factor: 3.312

Review 7.  Heat shock response in Drosophila.

Authors:  D Pauli; A P Arrigo; A Tissières
Journal:  Experientia       Date:  1992-07-15

8.  RNase Activity Decreases following a Heat Shock in Wheat Leaves and Correlates with Its Posttranslational Modification.

Authors:  S. C. Chang; D. R. Gallie
Journal:  Plant Physiol       Date:  1997-04       Impact factor: 8.340

9.  Modulation of cellular thermoresistance and actin filament stability accompanies phosphorylation-induced changes in the oligomeric structure of heat shock protein 27.

Authors:  J N Lavoie; H Lambert; E Hickey; L A Weber; J Landry
Journal:  Mol Cell Biol       Date:  1995-01       Impact factor: 4.272

10.  Accumulation, stability, and localization of a major chloroplast heat-shock protein.

Authors:  Q Chen; L M Lauzon; A E DeRocher; E Vierling
Journal:  J Cell Biol       Date:  1990-06       Impact factor: 10.539

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