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Lall, D.

Publications and source records attributed to Lall, D..

3 recordsLinked to original sources

Myxococcus xanthus fruiting body morphology is important for spore recovery after exposure to environmental stress

Environmental microorganisms have evolved a variety of strategies to survive fluctuations in environmental conditions, including production of biofilms and differentiation into spores. Myxococcus xanthus are ubiquitous soil bacteria that produce starvation-induced multicellular fruiting bodies filled with environmentally resistant spores (a specialized biofilm). Fruiting bodies are thought to facilitate the M. xanthus social life cycle by ensuring spores can germinate en masse into a productive feeding community. Isolated spores have been shown to be more resistant than vegetative cells to heat, ultraviolet radiation, and desiccation, but it is unknown whether assembly of spores into a fruiting body provides additional protection from environmental insults. We developed a high-throughput method to compare the recovery (outgrowth) of distinct cell types (vegetative cells, free spores, and intact fruiting bodies) after exposure to ultraviolet radiation or desiccation. Our data indicate haystack-shaped fruiting bodies protect spores from extended UV radiation but do not provide additional protection from desiccation. Perturbation of fruiting body morphology strongly impedes recovery from both UV exposure and desiccation. These results hint that the distinctive fruiting bodies produced by different myxobacterial species may have evolved to optimize their persistence in distinct ecological niches. IMPORTANCEThe myxobacteria are environmentally ubiquitous social bacteria that influence the local microbial community composition. Understanding how these bacteria are affected by environmental insults is important in predicting how microbial biogeochemical cycling is affected by climate change. When starved, myxobacteria produce multicellular fruiting bodies filled with spores. As spores are resistant to a variety of environmental insults, it has long been held that the fruiting body evolved to ensure group germination into a productive feeding community. Using the model myxobacterium, Myxococcus xanthus, we demonstrate that the haystack-shaped fruiting body morphology enables significantly more resistance to UV exposure than the free spores. In contrast, fruiting bodies are slightly detrimental to recovery from extended desiccation, an effect that is strongly exaggerated if fruiting body morphology is perturbed. These results suggest the variety of fruiting body morphologies observed in the myxobacteria may dictate their relative resistance to changing climate conditions.

microbiology↗

MAPK/MAK/MRK overlapping kinase (MOK) controls microglial inflammatory/type-I IFN responses via Brd4 and is involved in ALS pathophysiology

Amyotrophic lateral sclerosis (ALS) is a fatal and incurable neurodegenerative disease affecting motor neurons and characterized by microglia-mediated neurotoxic inflammation whose underlying mechanisms remain incompletely understood. In this work we reveal that MAPK/MAK/MRK overlapping kinase (MOK), with unknown physiological substrate, displays an immune function by controlling inflammatory and type-I IFN responses in microglia which are detrimental to primary motor neurons. Moreover, we uncover the epigenetic reader bromodomain-containing protein 4 (Brd4) as the first molecule regulated by MOK, by promoting Ser492-phospho-Brd4 levels. We further demonstrate that MOK regulates Brd4 functions by supporting its binding to cytokine gene promoters, therefore enabling innate immune responses. Remarkably, we show that MOK levels are increased in ALS spinal cord, particularly in microglial cells, and that administration of a chemical MOK-inhibitor to ALS model mice is able to modulate Ser492-phospho-Brd4 levels, suppress microglial activation and modify disease course, indicating a pathophysiological role of MOK kinase in ALS and neuroinflammation.

neuroscience↗

Activated iPSC-microglia from C9orf72 ALS/FTD patients exhibit endosomal-lysosomal dysfunction

While motor and cortical neurons are affected in C9orf72 ALS/FTD, it remains still largely unknown if and how non-neuronal cells induce or exacerbate neuronal damage. We generated C9orf72 ALS/FTD patient-derived induced pluripotent stem cells differentiated into microglia (iPSC-MG) and examined their intrinsic phenotypes. Similar to iPSC motor neurons, C9orf72 ALS/FTD iPSC-MG mono-cultures form G4C2 repeat RNA foci, exhibit reduced C9orf72 protein levels and generate dipeptide repeat proteins. Healthy control and C9orf72 iPSC-MG equivalently express microglial specific genes and display microglial functions including inflammatory cytokine release and phagocytosis of extracellular toxic cargos such as synthetic amyloid beta peptides and healthy human brain synaptoneurosomes. Select C9orf72 iPSC-MG patient lines show inability to efficiently remove phagocytosed contents, suggesting dysfunction of the endosomal-lysosomal pathways. Finally, RNA sequencing revealed overall transcriptional changes in diseased microglia yet no significant differentially expressed microglial-enriched genes. These minimal differences in cellular, molecular and functional characteristics of microglial mono-cultures suggest that a diseased microenvironment is associated with microglial activation and subsequent regulation of neuronal dysfunction.

neuroscience↗