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Genetic Dissection Reveals the Role of Ash1 Domains in Counteracting Polycomb Repression.

Eshagh Dorafshan | Tatyana G Kahn | Alexander Glotov | Mikhail Savitsky | Yuri B Schwartz
G3 (Bethesda, Md.) | 2019

Antagonistic functions of Polycomb and Trithorax proteins are essential for proper development of all metazoans. While the Polycomb proteins maintain the repressed state of many key developmental genes, the Trithorax proteins ensure that these genes stay active in cells where they have to be expressed. Ash1 is the Trithorax protein that was proposed to counteract Polycomb repression by methylating lysine 36 of histone H3. However, it was recently shown that genetic replacement of Drosophila histone H3 with the variant that carried Arginine instead of Lysine at position 36 did not impair the ability of Ash1 to counteract Polycomb repression. This argues that Ash1 counteracts Polycomb repression by methylating yet unknown substrate(s) and that it is time to look beyond Ash1 methyltransferase SET domain, at other evolutionary conserved parts of the protein that received little attention. Here we used Drosophila genetics to demonstrate that Ash1 requires each of the BAH, PHD and SET domains to counteract Polycomb repression, while AT hooks are dispensable. Our findings argue that, in vivo, Ash1 acts as a multimer. Thereby it can combine the input of the SET domain and PHD-BAH cassette residing in different peptides. Finally, using new loss of function alleles, we show that zygotic Ash1 is required to prevent erroneous repression of homeotic genes of the bithorax complex in the embryo.

Pubmed ID: 31540973

Associated grants

  • Agency: NIH HHS, United States
    Id: P40 OD018537

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Bloomington Drosophila Stock Center (tool)

RRID:SCR_006457

Collects, maintains and distributes Drosophila melanogaster strains for research. Emphasis is placed on genetic tools that are useful to a broad range of investigations. These include basic stocks of flies used in genetic analysis such as marker, balancer, mapping, and transposon-tagging strains; mutant alleles of identified genes, including a large set of transposable element insertion alleles; defined sets of deficiencies and a variety of other chromosomal aberrations; engineered lines for somatic and germline clonal analysis; GAL4 and UAS lines for targeted gene expression; enhancer trap and lacZ-reporter strains with defined expression patterns for marking tissues; and a collection of transposon-induced lethal mutations.

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Oregon-R(R) (tool)

RRID:DGGR_109612

Drosophila melanogaster with name Oregon-R(R) from DGGR.

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w[1118]; Df(3L)Exel9011/TM6B, Tb[1] (organism)

RRID:BDSC_7945

Drosophila melanogaster with name w[1118]; Df(3L)Exel9011/TM6B, Tb[1] from BDSC.

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w[*]; ash1[22] P{w[+mW.hs]=FRT(w[hs])}2A/TM6C, Sb[1] Tb[1] (organism)

RRID:BDSC_24161

Drosophila melanogaster with name w[*]; ash1[22] P{w[+mW.hs]=FRT(w[hs])}2A/TM6C, Sb[1] Tb[1] from BDSC.

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