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Hematopoietic Plasticity Mapped in and Other Insects

Overview
Journal Elife
Specialty Biology
Date 2022 Aug 3
PMID 35920811
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Abstract

Hemocytes, similar to vertebrate blood cells, play important roles in insect development and immunity, but it is not well understood how they perform their tasks. New technology, in particular single-cell transcriptomic analysis in combination with genetics, may now change this picture. This review aims to make sense of recently published data, focusing on and comparing to data from other drosophilids, the malaria mosquito, , and the silkworm, . Basically, the new data support the presence of a few major classes of hemocytes: (1) a highly heterogenous and plastic class of professional phagocytes with many functions, called plasmatocytes in and granular cells in other insects. (2) A conserved class of cells that control melanin deposition around parasites and wounds, called crystal cells in , and oenocytoids in other insects. (3) A new class of cells, the primocytes, so far only identified in . They are related to cells of the so-called posterior signaling center of the larval hematopoietic organ, which controls the hematopoiesis of other hemocytes. (4) Different kinds of specialized cells, like the lamellocytes in , for the encapsulation of parasites. These cells undergo rapid evolution, and the homology relationships between such cells in different insects are uncertain. Lists of genes expressed in the different hemocyte classes now provide a solid ground for further investigation of function.

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References
1.
Markus R, Laurinyecz B, Kurucz E, Honti V, Bajusz I, Sipos B . Sessile hemocytes as a hematopoietic compartment in Drosophila melanogaster. Proc Natl Acad Sci U S A. 2009; 106(12):4805-9. PMC: 2660760. DOI: 10.1073/pnas.0801766106. View

2.
Couturier L, Mazouni K, Corson F, Schweisguth F . Regulation of Notch output dynamics via specific E(spl)-HLH factors during bristle patterning in Drosophila. Nat Commun. 2019; 10(1):3486. PMC: 6677740. DOI: 10.1038/s41467-019-11477-2. View

3.
Lebestky T, Jung S, Banerjee U . A Serrate-expressing signaling center controls Drosophila hematopoiesis. Genes Dev. 2003; 17(3):348-53. PMC: 195988. DOI: 10.1101/gad.1052803. View

4.
Bajgar A, Dolezal T . Extracellular adenosine modulates host-pathogen interactions through regulation of systemic metabolism during immune response in Drosophila. PLoS Pathog. 2018; 14(4):e1007022. PMC: 5942856. DOI: 10.1371/journal.ppat.1007022. View

5.
Bajgar A, Krejcova G, Dolezal T . Polarization of Macrophages in Insects: Opening Gates for Immuno-Metabolic Research. Front Cell Dev Biol. 2021; 9:629238. PMC: 7917182. DOI: 10.3389/fcell.2021.629238. View