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Ward, A. P.

Publications and source records attributed to Ward, A. P..

2 recordsLinked to original sources

Physiological folate levels constrain nucleotide synthesis and increase dependence on nucleotide salvage

Proliferating cells must acquire nucleotides to support DNA replication, yet how cells meet these nucleotide demands for proliferation under physiological conditions remains understudied. Here, we investigated how physiological nutrient availability shapes nucleotide acquisition strategies in a mouse model of B-cell acute lymphoblastic leukemia (B-ALL). To assess how environmental nutrients impact nucleotide metabolism, we formulated a mouse plasma-like medium (MPM) that reproduces the circulating metabolite composition of plasma from mice with B-ALL and assessed how this influenced nucleotide metabolism relative to standard culture conditions, where nucleotide acquisition has historically been studied. We find that leukemia cells cultured in MPM acquire nucleotides through salvage pathways, and that select nucleotide salvage pathways are required for proliferation under physiological conditions. Of note, this dependency on nucleotide salvage in plasma-like conditions was not caused by precursor metabolite limitation for de novo synthesis. Instead, we found that physiological folate levels are insufficient to support deoxynucleotide triphosphate (dNTP) synthesis for genome replication, leading to DNA replication stress and impaired proliferation when nucleotide salvage is disrupted. Consistently, dietary folate restriction exacerbates the impaired leukemia progression phenotype of nucleotide salvage-deficient B-ALL cells. Together, these findings demonstrate that access to folates is an endogenous limitation for nucleotide synthesis in plasma-like nutrient conditions, increasing the relevance of nucleotide salvage pathways for leukemia progression. More broadly, this work highlights how micronutrient abundance can influence metabolic dependencies and reveals that folate levels shape nucleotide metabolism under physiological conditions.

cancer biology↗

No adaptive plasticity in the heat tolerance of lizard sperm

O_LIAdaptive phenotypic plasticity can help organisms cope with global warming by increasing their heat tolerance, yet most research has focused on whole-organism traits. Much less is known about thermal plasticity at the gamete level despite increasing evidence that reproduction, and particularly sperm function, is especially sensitive to heat. C_LIO_LIWe tested for plasticity in sperm heat tolerance in two ways: via male thermal acclimation (pre-ejaculate stage) and via sperm cell heat hardening (post-ejaculate stage) in brown anole lizards (Anolis sagrei). We also measured plasticity in several other sperm and ejaculate traits in response to male thermal acclimation. C_LIO_LITo test for effects of male thermal acclimation, adult males were exposed to one of two ecologically realistic, fluctuating temperature regimes that either mimic cool spring conditions or projected future summer conditions for eight weeks. Throughout this period, we repeatedly measured sperm heat tolerance (LT50), baseline motility, and sperm count. We also measured sperm morphology at the end of thermal acclimation. We predicted that males in the warmer treatment would produce more heat tolerant sperm. C_LIO_LITo test for post-ejaculate heat hardening, we compared the heat tolerance of ejaculated sperm that either did or did not experience a high but non-lethal temperature prior to heat tolerance measurement. C_LIO_LIWe found no plasticity in sperm heat tolerance due to either male thermal acclimation or sperm cell heat shock. Long-term thermal acclimation of males did not increase sperm heat tolerance, nor change motility, sperm count, or sperm morphology. We also found no evidence for post-ejaculate heat hardening, as exposing sperm cells to mild sublethal heat shock did not enhance sperm heat tolerance. C_LIO_LIOur results indicate that gametic traits have limited capacity for plastic adjustment to thermal stress, which is broadly consistent with the low levels of thermal plasticity found for whole-organism thermal tolerance across ectotherms. This highlights the vulnerability of reproductive traits to rising temperatures and the importance of evolutionary and behavioral responses to buffer organisms from climate change. C_LI

ecology↗