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Biology subjects

Marinova, M. B.

Publications and source records attributed to Marinova, M. B..

2 recordsLinked to original sources

Chemotherapy accelerated bone ageing is reversed by NMN

Cancer patients face an array of long-term chronic diseases and accelerated biological ageing, due largely to the off-target effects of broadly cytotoxic chemotherapy drugs. This is especially a problem in children, where cancer survivors experience a subsequent high risk of bone mineral deficits and fractures, normally seen in the older population. Here, we model this to show that early-life treatment with a single dose of the commonly used chemotherapy cisplatin profoundly impairs late-life bone health, and that these bone deficits are completely resolved through treatment with the nicotinamide adenine dinucleotide (NAD+) precursor nicotinamide mononucleotide (NMN). While we had previously shown that this same strategy protects against chemotherapy induced female infertility, this maintenance of aged bone health appears to be unrelated to endocrine changes due to protection of the ovarian reserve. Rather, this is driven by altered phosphorus homeostasis and protection against renal damage, which otherwise increases parathyroid hormone secretion to mobilise calcium stores from bone. Overall, this work highlights a new approach for maintaining healthy bone ageing in cancer survivors.

physiology↗

Oocyte and cumulus cell cooperativity and metabolic plasticity under the direction of oocyte paracrine factors

Mammalian oocytes develop and mature in a mutually dependent relationship with surrounding cumulus cells. The oocyte actively regulates cumulus cell differentiation and function by secreting soluble paracrine oocyte-secreted factors (OSFs). We characterized the molecular mechanisms by which two model OSFs, cumulin and BMP15, regulate oocyte maturation and cumulus-oocyte cooperativity. Exposure to these OSFs during maturation altered the proteomic and multispectral autofluorescence profiles of both the oocyte and cumulus cells. In oocytes, cumulin significantly upregulated proteins involved in nuclear function. In cumulus cells, both OSFs elicited marked upregulation of a variety of metabolic processes (mostly anabolic), including lipid, nucleotide, and carbohydrate metabolism, while mitochondrial metabolic processes were downregulated. The mitochondrial changes were validated by functional assays confirming altered mitochondrial morphology, respiration, and content, whilst maintaining ATP homeostasis. Collectively, these data demonstrate that OSFs remodel cumulus cell metabolism during oocyte maturation in preparation for ensuing fertilization and embryonic development. HIGHLIGHTSO_LIDuring oocyte maturation, oocyte-secreted factors promote cell cooperativity between the oocyte and cumulus cells by altering the molecular composition of both cell types. C_LIO_LIOocyte-secreted factors downregulate protein catabolic processes, and upregulate DNA binding, translation, and ribosome assembly in oocytes. C_LIO_LIOocyte-secreted factors alter mitochondrial number, morphology, and function in cumulus cells. C_LIO_LIOocyte-secreted factors further enhance metabolic plasticity in cumulus cells by upregulating anabolic pathways for macromolecules and small molecule organics. C_LIO_LIThe oocyte, via oocyte-secreted factors, instructs cumulus cells to increase metabolic workload on its behalf, thereby subduing oocyte metabolism. C_LI

developmental biology↗