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Anderson, A. L.

Publications and source records attributed to Anderson, A. L..

3 recordsLinked to original sources

The functional maturation of mouse spermatozoa is underpinned by global remodeling of the cellular phosphoproteome

The functional maturation of mammalian spermatozoa is driven by modification of their intrinsic proteome as the cells transit the male (epididymal sperm maturation) and female reproductive tracts (capacitation). Here, high-resolution mass spectrometry was used to interrogate the central role that phosphoproteomic changes play in the functional remodeling of mouse spermatozoa. This strategy identified 14,586 site-specific phosphorylation events, including the phosphorylation of 573 proteins and dephosphorylation of 426 during epididymal maturation and additional phosphorylation changes in 211 proteins linked to capacitation. We identified over 300 kinases that putatively govern these events, including three novel kinases (STK33, HIPK4, and PAK1) implicated in acrosomal exocytosis. The functional relevance of these data was confirmed via the use of knockout mouse models, which demonstrated several phosphoproteins as being essential for sperm motility and fertilization capacity. These findings illustrate that large-scale phosphorylation remodeling occurs during sperm maturation with implications extending to novel means of fertility regulation. HIGHLIGHTSO_LISperm phosphoproteome is dramatically remodeled during post-testicular maturation C_LIO_LIIdentification of >14,000 site-specific phosphorylation events providing comprehensive insight into sperm cell signaling events associated with functional maturation C_LIO_LIMajor changes in the sperm phosphoproteome coincide with epididymal maturation whereas capacitation results in more modest changes C_LIO_LIIdentification of 343 novel kinases potentially important for conferring functional maturity to spermatozoa and demonstrated role for STK33, HIPK4 and PAK1 kinases C_LIO_LIKnockout mouse models of 23 genes provided in vivo validation, with loss of these proteins leading to pronounced defects in sperm motility and fertilization capacity C_LIO_LIAll data is available via our interactive ShinySpermPhospho application - https://reproproteomics.shinyapps.io/ShinySpermPhospho/ C_LI

cell biology↗

Inflammatory Oxidative Stress Compounds Inhibit Insulin Secretion through Rapid Protein Carbonylation

Pancreatic {beta}-cells in pre-type 1 diabetes (T1D) experience stress due to islet inflammation, which accompanies early defects in insulin secretion that precede autoimmune destruction. One product of inflammatory stress is protein carbonylation (PC), brought on by reactive oxygen species (ROS) combining with lipids to produce reactive aldehydes such as 4-hydroxynonenal (4-HNE) that irreversibly modify Cys, His, and Lys sidechains. In this study, we used proteomics to measure patterns of PC in pancreatic islets from 10-week-old pre-diabetic NOD mice and in cultured insulin-secreting cells treated with either 4-HNE or pro-inflammatory cytokines. All three stress conditions increased carbonylation of proteins central to {beta}-cell function including Rab GTPases and other proteins that are essential for vesicle trafficking. Gene ontology analysis indicates that the affected proteins and pathways in pre-diabetic NOD islets reflect a combination of those impacted by 4-HNE and cytokine treatment. Furthermore, both 4-HNE and cytokines significantly inhibited insulin secretion by [~]50% in cultured MIN6 and INS-1-GRINCH cells. In particular, exposure to 4-HNE for as little as 5 minutes suppressed insulin secretion and increased the carbonylation of over 1000 proteins. Overall, the observed PC pattern in pre-T1D islets is consistent with a model in which {beta}-cells experience multiple sources of oxidative stress, including ROS generation within {beta}-cells themselves and reactive compounds released by infiltrating immune cells. The latter exogenous source may represent a novel rapid mechanism for inhibiting insulin secretion.

biochemistry↗

Sub-chronic elevation in ambient temperature drives alterations to the sperm epigenome and accelerates early embryonic development in mice

Forecasted increases in the prevalence and severity of extreme weather events accompanying changes in climatic behavior pose potential risk to the reproductive capacity of humans and animals of ecological and agricultural significance. While several studies have revealed that heat stress induced by challenges such as testicular insulation can elicit a marked negative effect on the male reproductive system, and particularly the production of spermatozoa, less is known about the immediate impact on male reproductive function following sub-chronic whole-body exposure to elevated ambient temperature. To address this knowledge gap, we exposed unrestrained male mice to heat stress conditions that emulate a heat wave (daily cycle of 8_h at 35{degrees}C followed by 16 h at 25{degrees}C) for a period of seven days. Neither the testes or epididymides of heat exposed male mice exhibited evidence of gross histological change, and similarly, spermatozoa of exposed males retained their functionality and ability to support embryonic development. However, the embryos generated from heat exposed spermatozoa experienced pronounced changes in gene expression linked to acceleration of early embryo development, aberrant blastocyst hatching and increased fetal weight. Such changes were causally associated with an altered sperm small non-coding RNA (sncRNA) profile, such that these developmental phenotypes were recapitulated by microinjection of wild-type embryos sired by control spermatozoa with RNAs extracted from heat exposed spermatozoa. Such data highlight that even a relatively modest excursion in ambient temperature can affect male reproductive function and identify the sperm sncRNA profile as a particular point of vulnerability to this imposed environmental stress. Significance StatementThe fidelity of sperm production underpins successful reproduction yet is highly vulnerable to various forms of environmental challenge, including heat stress. Despite this knowledge, we lack a complete understanding of the immediate impact on male reproduction of whole-body exposure to elevated ambient temperatures such as those encountered during a heatwave. By experimentally emulating heatwave conditions, we demonstrate that the spermatozoa of exposed male mice accumulate changes in their small RNA profile that are causally linked to pronounced changes in embryonic gene expression, accelerated pre-implantation development, aberrant blastocyst hatching, and increased fetal weight. Such data highlight that even a relatively modest alteration in ambient temperature can affect male reproductive function, demonstrating the acute sensitivity of sperm small RNAs to environmental stress.

cell biology↗