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Biology subjects

Liu, D.-T.

Publications and source records attributed to Liu, D.-T..

2 recordsLinked to original sources

Nearly complete genome assembly of a critically endangered pine illuminates evolution and conservation of conifers

Population genetic theory predicts that severe bottlenecks and extremely small effective population sizes (Ne) should reduce the ability of natural selection to eliminate harmful mutations. Under this framework, deleterious alleles are expected to accumulate and even fix, eroding fitness, constraining evolutionary rescue, and potentially precipitating mutational meltdown. Yet, empirical tests of these predictions in species at the extreme lower bound of Ne remain rare. We address this gap using Pinus squamata, one of the rarest tree species on Earth, with only 35 wild individuals remaining. We generated a near-complete reference genome (29.2 Gb) for this species and performed population genomic analyses across nearly all of its extant individuals, together with two closely related species. P. squamata exhibits extraordinarily low nucleotide diversity ({pi} = 3.35 x 10-), the lowest reported for any plant. Demographic inference reveals a recent and severe bottleneck ([~]20 generations ago) that reduced Ne to [~]2.7 and resulted in intense inbreeding. Contrary to theoretical expectations, we uncover evidence for highly efficient purifying selection: strongly deleterious mutations are markedly depleted, indicating substantial purging despite the extremely small Ne. Genome-wide patterns further implicate selection at linked sites--including background selection and pseudo-overdominance--as dominant forces shaping genomic variation in the species. These results challenge the prevailing view that drift overwhelms selection in extremely small populations. Instead, they suggest that, under certain genomic and demographic conditions, purifying selection can remain unexpectedly effective, potentially mitigating the risk of mutational meltdown in the rarest species.

genomics↗

Probucol mitigates high-fat diet-induced cognitive and social impairments through disruption of redox-inflammation association

Obesity and its detrimental metabolic consequences are commonly recognized as risk factors for impairments in the central nervous system (CNS). However, the direct link between metabolic abnormalities and brain functions during high-fat feeding remains unclear. Here, we show that treatment with probucol, a cholesterol-lowering drug, counteracts the cognitive and social impairments induced by a high-fat diet in mice, while having no effect on mood disorders. Unexpectedly, the beneficial effects of probucol do not result from rectifying obesity or restoring glucose and lipid homeostasis, as evidenced by the lack of change in body weight, blood glucose and serum cholesterol levels. Interestingly, high-fat feeding led to association among the levels of redox factors, including oxidized low-density lipoprotein, glutathione and malondialdehyde, as well as a significant negative correlation between malondialdehyde levels and behavioral performance. Probucol treatment interrupts these linkages and differentially regulates the proteins for the generation of reactive oxygen species and reactive nitrogen species in the brain. These findings prompt a reconsideration of the mechanism of action of probucol, as well as the roles of altered metabolic profiles and free radicals in brain function.

animal behavior and cognition↗