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Strand, L. G.

Publications and source records attributed to Strand, L. G..

3 recordsLinked to original sources

Massive programmed DNA elimination during embryogenesis in the trioecious nematode Auanema rhodense

In animals, the germline is usually set aside early in development and its genome is protected to ensure faithful transmission of genetic information to future generations. Genetic alterations in somatic cells are not inherited by progeny, and the somatic genome does not have to be protected from change in the same way. In some species, programmed DNA elimination (PDE) results in the directed loss of genetic material from somatic cells. Here, we report extreme PDE in Auanema rhodense, a free-living nematode with a remarkable, trioecious life history and unusual patterns of sex chromosome inheritance. We find that nearly two thirds of the A. rhodense germline genome is eliminated from somatic cells, with DNA lost from chromosome ends as well as within chromosomes, resulting in fragmentation of the seven germline chromosomes into fourteen somatic chromosomes. Most eliminated DNA comprises multi-megabase tandem repeat blocks. Eliminated DNA on the X chromosome harbours germline-restricted repeats that are distinct from those on the autosomes. The eliminated DNA includes many highly-repeated non-coding RNA loci but few protein-coding genes. Elimination sites are strongly associated with a palindromic sequence motif that likely directs DNA breakage and new telomere repeat array addition. Cytologically, PDE begins at the 12-cell stage of embryogenesis, is synchronous across all chromosomes, and is characterised by the formation of transient micronucleus-like bodies. Together, these findings reveal unusually extensive PDE in a free-living nematode and raise the possibility that germline-restricted repeat architecture may contribute to the atypical sex chromosome inheritance observed in Auanema.

genomics↗

Active maintenance of meiosis-specific chromosome structures in C. elegans by the deubiquitinase DUO-1

Meiotic prophase is characterized by a dynamic program in which germ cells undergo a complex series of associations and dissociations of protein complexes that drive assembly, remodeling, and disassembly of meiosis-specific chromosome structures and dramatic changes in chromosome compaction. Failure to properly coordinate these processes can result in improper chromosome segregation, producing aneuploid gametes and inviable zygotes. Here, we investigate the roles of C. elegans DUO-1, an ortholog of mammalian ubiquitin-specific proteases USP26 and USP29, in mediating these dynamic chromosomal events during meiotic prophase. Cytological analyses of duo-1 null mutants indicate that loss of DUO-1 function leads to impaired assembly of synaptonemal complexes (SCs), loss of integrity of meiotic chromosome axes, ineffective homolog pairing, premature separation of sister chromatids, and late-prophase chromosome decompaction. Further, SC instability in duo-1 mutants correlates with depletion of REC-8 cohesin complexes and is accompanied by massive accumulation of early DSB repair intermediates. By using a dual-AID-tagged allele to deplete DUO-1 during meiotic development, we demonstrate that DUO-1 is continually required throughout meiotic prophase progression, to promote proper axis/SC assembly in early prophase, to maintain axis/SC stability during the late pachytene stage, and to promote/maintain chromosome compaction at the end of meiotic prophase. Together, our data reveal that meiotic chromosome structure and meiosis-specific chromosome architecture require active maintenance throughout meiotic prophase, and that this maintenance is necessary for successful meiosis.

developmental biology↗

Imaginal disc growth factors are Drosophila Chitinase-like Proteins with roles in morphogenesis and CO2 response

Chitinase-like proteins (CLPs) are members of the family 18 glycosyl hydrolases, which include chitinases and the enzymatically inactive CLPs. A mutation in the enzymes catalytic site, conserved in vertebrates and invertebrates, allowed CLPs to evolve independently with functions that do not require chitinase activity. CLPs normally function during inflammatory responses, wound healing, and host defense, but when they persist at excessive levels at sites of chronic inflammation and in tissue-remodeling disorders, they correlate positively with disease progression and poor prognosis. However, little is known about their physiological function. Drosophila melanogaster has six CLPS, termed Imaginal disc growth factors (Idgfs), encoded by Idgf1, Idgf2, Idgf3, Idgf4, Idgf5, and Idgf6. In this study we developed tools to facilitate characterization of the physiological roles of the Idgfs by deleting each of the Idgf genes using the CRISPR/Cas9 system and assessing loss-of-function phenotypes. Using null lines, we showed that loss-of-function for all six Idgf proteins significantly lowers fertility and viability and compromises germ cell migration. We also showed that Idgfs play roles in epithelial morphogenesis, maintaining proper epithelial architecture and cell shape, regulating E-cadherin and cortical Actin, and protecting these tissues against CO2 exposure. Defining the normal molecular mechanisms of CLPS is key to understanding how deviations tip the balance from a physiological to a pathological state.

developmental biology↗