» Articles » PMID: 28304971

A Mutant Affecting the Crystal Cells InDrosophila Melanogaster

Overview
Date 2017 Mar 18
PMID 28304971
Citations 42
Authors
Affiliations
Soon will be listed here.
Abstract

Black cells (Bc, 2-80.6±) mutant larvae ofDrosophila melanogaster have pigmented cells in the hemolymph and lymph glands. In this report we present evidence that these melanized cells are a mutant form of the crystal cells, a type of larval hemocyte with characteristic paracrystalline inclusions.Bc larvae lack crystal cells. Furthermore, the distribution pattern of black cells inBc larvae parallels that of experimentally-blackened crystal cells in normal larvae (phenocopy).InBc/Bc zygotes black cells appear during mid embryonic development but inBc /Bc zygotes pigmented cells are not found until late in the first larval instar.Crystal cells are present in the heterozygous larvae until this time, and paracrystalline inclusions can be seen in some of the cells undergoing melanization in these larvae.The rate of phenol oxidase activity inBc /Bc larval cell-free extracts is less than half that ofBc /Bc extracts whereas enzyme activity is undetectable inBc/Bc larvae. We propose that theBc gene product is required for maintaining the integrity of the paracrystalline inclusions; inBc/Bc larvae either the product is absent or nonfunctional so an effective contact between substrate and enzyme results in melanization of the cells.Phenol oxidase itself is either destroyed or consumed in the melanization process accounting for the absence of enzyme activity inBc/Bc larvae. These studies confirm that the crystal cells store phenolic substrates and are the source of the hemolymph phenol oxidase activity in the larva ofD. melanogaster.

Citing Articles

Heightened immune surveillance in populations selected for faster development and extended longevity.

Shrivastava N, Chauhan N, Shakarad M Heliyon. 2022; 8(12):e12090.

PMID: 36544838 PMC: 9761728. DOI: 10.1016/j.heliyon.2022.e12090.


Two Isoforms of Containing Either One or Two GATA Zinc Fingers Provide Functional Diversity During Development.

Moussalem D, Auge B, Di Stefano L, Osman D, Gobert V, Haenlin M Front Cell Dev Biol. 2022; 9:795680.

PMID: 35178397 PMC: 8844375. DOI: 10.3389/fcell.2021.795680.


Eater cooperates with Multiplexin to drive the formation of hematopoietic compartments.

Csordas G, Grawe F, Uhlirova M Elife. 2020; 9.

PMID: 33026342 PMC: 7541089. DOI: 10.7554/eLife.57297.


Comparative RNA-Seq analyses of Drosophila plasmatocytes reveal gene specific signatures in response to clean injury and septic injury.

Ramond E, Dudzic J, Lemaitre B PLoS One. 2020; 15(6):e0235294.

PMID: 32598400 PMC: 7323993. DOI: 10.1371/journal.pone.0235294.


Insulin-Like Signalling Influences the Coordination of Larval Hemocyte Number with Body Size in .

Bakopoulos D, Forbes Beadle L, Esposito K, Mirth C, Warr C, Johnson T G3 (Bethesda). 2020; 10(7):2213-2220.

PMID: 32341056 PMC: 7341137. DOI: 10.1534/g3.120.401313.


References
1.
Harper R, Armstrong F . Alkaline phosphatase of Drosophila melanogaster. 3. Tyrosine-O-phosphate as substrate. Biochem Genet. 1974; 11(2):177-80. DOI: 10.1007/BF00485773. View

2.
Lunan K, MITCHELL H . The metabolism of tyrosine-O-phosphate in Drosophila. Arch Biochem Biophys. 1969; 132(2):450-6. DOI: 10.1016/0003-9861(69)90388-9. View

3.
Peeples E, Geisler A, Whitcraft C, Oliver C . Comparative studies of phenol oxidase activity during pupal development of three lozenge mutants (lz8,lz,lzk) of Drosophila melanogaster. Genetics. 1969; 62(1):161-70. PMC: 1212259. DOI: 10.1093/genetics/62.1.161. View

4.
SEYBOLD W, Meltzer P, MITCHELL H . Phenol oxidase activation in Drosophila: a cascase of reactions. Biochem Genet. 1975; 13(1-2):85-108. DOI: 10.1007/BF00486009. View

5.
Lewis H . Genetic Control of Dopa Oxidase Activity in Drosophila Melanogaster. I. Analysis of Wild Type, Sable, Suppressor-of-Sable and Suppressed Sable Strains. Genetics. 1960; 45(9):1217-31. PMC: 1210120. DOI: 10.1093/genetics/45.9.1217. View