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Knott, B.

Publications and source records attributed to Knott, B..

3 recordsLinked to original sources

Inhibition of NFAT promotes loss of tissue resident uterine natural killer cells and attendant pregnancy complications in humans

Uterine natural killer cells (uNKs) are a tissue resident lymphocyte population that are critical for pregnancy success. Although mouse models have demonstrated that NK deficiency results in abnormal placentation and poor pregnancy outcomes, the generalizability of this knowledge to humans remains unclear. Here we identify uterus transplant (UTx) recipients as a human population with reduced uNK cells and altered pregnancy phenotypes. We show that the NK reduction in UTx correlates with impaired transcriptional programming of NK tissue residency arising from the inhibition of NFAT-mediated signaling. Our observations suggest that NFAT-dependent genes modulate multiple molecular tissue residency programs in uNKs. These include early residency programs involving AP-1-family transcription factors and TGF-{beta}-mediated upregulation of surface integrins. Collectively, our data identify a previously undescribed role for NFAT in uterine NK tissue residency and provide novel mechanistic insights into the biologic basis of pregnancy complications due to alteration of tissue resident NK subsets in humans. One Sentence SummaryRole of NFAT in uterine NK cell tissue residency

immunology↗

Sequential Transcriptional Programs of Tissue Residency Drive Human Uterine NK Cell Development

Uterine natural killer cells are critical for pregnancy success, but the origin and development of these cells in humans remain unclear. Here we use various single cell approaches to identify the transcriptional programs governing uterine NK cell development in humans. These analyses suggest a developmental continuum which begins with seeding of the endometrium with blood immature CD56bright precursors, evolves through CD56bright endometrial founder NK cells, and ends with tissue resident decidual NK cells during pregnancy which possess non-cytotoxic functions. Our work identifies a role for sequential programs of tissue residency in the differentiation of these cells, as differentiating endometrial tissue resident NK (trNK) cells acquire early and late transcriptional programs of residency which coincide with acquisition of unique non-cytotoxic effector programs. Notably, we identified early residency programs in human endometrial trNKs by expression of NR4A2, AP-1 transcription factors, and other immediate early response genes that were shared with CD8 tissue resident memory T cells in mice, suggesting conservation of transcriptional programs of early tissue residency programs across species and cell types. Late residency programs were guided by TGF{beta}, which promoted expression of various integrins and trNK subset diversification within the non-pregnant endometrium. Altogether, these data identify the molecular foundations for endometrial trNK heterogeneity and suggest that the uterine NK diversity observed during pregnancy is established before embryo implantation and intimately tied to residency programming.

immunology↗

Structural characterization and dynamics of AdhE ultrastructures from Clostridium thermocellum: A containment strategy for toxic intermediates?

Clostridium thermocellum, a cellulolytic thermophilic anaerobe, is considered by many to be a prime candidate for the realization of consolidated bioprocessing (CBP) and is known as an industry standard for biofuel production. C. thermocellum is among the best biomass degraders identified to date in nature and produces ethanol as one of its main products. Many studies have helped increase ethanol titers in this microbe, however ethanol production using C. thermocellum is still not economically viable. Therefore, a better understanding of its ethanol synthesis pathway is required. The main pathway for ethanol production in C. thermocellum involves the bifunctional aldehyde-alcohol dehydrogenase (AdhE). To better understand the function of the C. thermocellum AdhE, we used cryo-electron microscopy (cryo-EM) to obtain a 3.28 [A] structure of the AdhE complex. This high-resolution structure, in combination with molecular dynamics simulations, provides insight into the substrate channeling of the toxic intermediate acetaldehyde, indicates the potential role of C. thermocellum AdhE to regulate activity and cofactor pools, and establishes a basis for future engineering studies. The containment strategy found in this enzyme offers a template that could be replicated in other systems where toxic intermediates need to be sequestered to increase the production of valuable biochemicals.

biophysics↗