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Biomedical subjects

Lin Li

Publications and source records attributed to Lin Li.

11 recordsLinked to original sources

A chromosome-scale genome of Capsicum pubescens provides insights into candidate terpene-associated gene clusters and pan variation of terpene synthases.

A chromosome-scale genome of Capsicum pubescens and comparative pan-TPS analysis support structural characterization and gene-level prioritization of a chromosome-9 terpene-associated candidate locus in this accession. Capsicum pubescens is one of the five domesticated Capsicum species, mainly cultivated in mid- to high-elevation regions of the Americas. Despite its distinctive morphology and fruit traits, genomic resources for C. pubescens remain less developed than those for the widely cultivated C. annuum. Here, we assembled a chromosome-scale reference genome for accession HNUCP0001, spanning 3.70 Gb with a scaffold N50 of 278.01 Mb. Comparative genomics revealed 679 significantly expanded gene families enriched in sesquiterpenoid and triterpenoid biosynthesis. Genome-wide biosynthetic gene-cluster mining identified multiple terpene-associated candidate loci, which were subsequently prioritized using genome-derived structural criteria and Capsicum pubescens-specific expression evidence. Subsequently, we curated the terpene synthase (TPS) repertoire and, across 16 Capsicum genomes, resolved 36 TPS orthogroups with pronounced presence/absence variation, highlighting dynamic lineage-specific diversification. Together, these analyses establish HNUCP0001 as an accession-specific genomic resource and provide a comparative framework for prioritizing terpene-associated TPS genes and candidate BGCs in Capsicum. These candidate loci, together with accession-level transcriptomic and metabolomic evidence, offer testable hypotheses for future functional studies of specialized terpenoid metabolism in C. pubescens.

Alkyl and Aryl Transferases

Molecular characterization and genome sequence analysis of Dichroa emaravirus, a putative novel member of the genus Emaravirus.

Hydrangea febrifuga (syn. Dichroa febrifuga) is a traditional medicinal plant distributed in China and Southeast Asia, and febrifugine, one of its principal bioactive constituents, has served as an important lead compound for antimalarial drug development. Viral infections may adversely affect the quality of medicinal plants; however, no emaravirus has previously been reported from H. febrifuga. Here, high-throughput sequencing was performed on H. febrifuga leaves exhibiting mosaic symptoms collected in Yunnan Province, China. Combined with RT-PCR, Sanger sequencing, and 5'/3' rapid amplification of cDNA ends (RACE), five full-length genomic RNA segments of a putative novel emaravirus, tentatively designated Dichroa emaravirus (DEV), were identified and characterized. The five negative-sense single-stranded RNA (-ssRNA) segments have a combined length of 12,971 nt and encode an RNA-dependent RNA polymerase (RdRp), glycoprotein precursor (GP), nucleocapsid protein (NP), movement protein (MP), and an uncharacterized accessory protein, P5. The maximum amino acid sequence identities of DEV P1-P4 with recognized emaraviruses were 73.90%, 51.82%, 65.60%, and 81.30%, respectively, whereas P5 showed a maximum identity of 49.16% with its closest homolog. Thus, three of the four core proteins had maximum identities below 80%, consistent with the current ICTV species demarcation criterion for the genus Emaravirus. Maximum-likelihood phylogenetic analyses based on the four core proteins further supported the placement of DEV within the genus Emaravirus (family Fimoviridae). These results support DEV as a putative novel emaravirus and represent the first report of an emaravirus associated with H. febrifuga.

Genome, Viral

Subcellular sirtuin signaling networks: pivotal regulators of cardiovascular homeostasis and remodeling.

Sirtuins represent a family of highly conserved enzymes, initially identified as Silent Information Regulator 2 (Sir2) in yeast, where they serve as fundamental determinants of longevity. Overexpression of Sir2 in yeast significantly extends lifespan, while its deletion leads to shortened longevity. In mammals, sirtuins (SIRT1-7) represent a conserved family of NAD+-dependent deacylases with diverse catalytic activities. While most members primarily function as deacetylases, SIRT4 exhibits mono-ADP-ribosylation activity, and SIRT5 uniquely targets negatively charged acyl groups, including lysine succinylation, malonylation, and glutarylation. These enzymes act as critical intracellular sensors and regulators widely distributed across diverse tissues. By targeting a broad array of protein substrates, they regulate core biological processes-including genomic stability, metabolism, inflammation, and stress responses. As cardiovascular diseases (CVDs) remain the primary cause of global mortality, driven by complex pathologies such as chronic inflammation and metabolic dysregulation, the sirtuin network has emerged as an indispensable regulator of cardiovascular health. This review systematically elucidates the pivotal roles of sirtuins in cardiovascular homeostasis. We provide an in-depth, subcellular perspective on how nuclear, cytoplasmic, and mitochondrial sirtuins synergistically protect against cardiovascular remodeling, atherosclerosis (AS), and heart failure (HF). Particular emphasis is placed on the molecular mechanisms modulating macrophage polarization and the mitigation of vascular inflammation via the NF-κB signaling pathway. Furthermore, we assess the therapeutic promise of caloric restriction (CR) and pharmacological activators, incorporating recent human clinical evidence. We propose a framework matching sirtuin-based interventions to disease tempo, advocating isoform and compartment-specific strategies for acute and chronic CVDs.

Sirtuins

Genetic characterization of carbapenem-resistant Klebsiella pneumoniae bloodstream isolates with reduced susceptibility to cefiderocol.

OBJECTIVES: To assess cefiderocol activity against carbapenem-resistant Klebsiella pneumoniae (CRKP) bloodstream isolates collected before local clinical introduction and to characterize the distribution of borderline MIC elevation across major genomic backgrounds. METHODS: We retrospectively analyzed 389 episodes of K. pneumoniae bloodstream infection at a tertiary hospital in China during 2018-2024. All 83 carbapenem-resistant isolates underwent cefiderocol broth microdilution testing and whole-genome sequencing. For epidemiological analysis, reduced susceptibility was prespecified as an MIC of 4-16 mg/L and was not intended to replace clinical breakpoint interpretation. RESULTS: CRKP accounted for 21.3% of K. pneumoniae bloodstream infections and remained associated with in-hospital mortality after adjustment for infection severity and source. By CLSI criteria, 83.1% of isolates were cefiderocol susceptible; the MIC50 and MIC90 were 4 and 8 mg/L, respectively, and 41.0% met the reduced-susceptibility definition. ST11 predominated, with KL47 and KL64 as the main capsular loci. Cefiderocol MICs were higher among KL47/KL64 and virulence-plasmid-associated isolates than among comparator backgrounds. In multivariable analysis, bla NDM-1, bla SHV-12, and the aerobactin locus remained associated with reduced susceptibility, although the findings require cautious interpretation because of limited sample size and possible effects of clonal background. No inactivating mutations were identified in cirA, fepA, or fiu. CONCLUSIONS: Borderline cefiderocol MIC elevation was present before local drug exposure and was more frequent in locally prevalent ST11-KL47/KL64 and virulence-plasmid-associated CRKP. These findings provide a bloodstream-specific pre-introduction baseline and support prospective surveillance of numerical MIC distributions and associated genomic backgrounds.

Cefiderocol

Coordinated use of three homocysteine methyltransferases supports l-methionine biosynthesis and environmental adaptation among plant-associated bacteria.

Plant pathogens colonize multiple plant-associated habitats throughout their life cycle, encountering distinct nutrient conditions and microbial communities. l-methionine is required for bacterial growth and environmental adaptation. However, how plant pathogens coordinate l-methionine biosynthetic pathways to adapt to different plant-associated environments remains poorly understood. Here, using the plant pathogen Xanthomonas campestris pv. campestris strain XC1 as a model, we show that three homocysteine methyltransferase pathways allow XC1 to catalyze the final step of l-methionine biosynthesis using different methyl donors and cofactors under different environmental conditions. Bioinformatic and transcriptional analyses identified three homocysteine methyltransferase-associated operons in XC1, mesMXD, mmuPM, and metHRHaHb, corresponding to the MesD-, MmuM-, and MetHaHb-dependent pathways, respectively. MesD uses an endogenously synthesized methyl donor and functions as the dominant homocysteine methyltransferase under l-methionine-limiting conditions, supporting bacterial growth, intracellular l-methionine accumulation, and full virulence. Furthermore, MmuM enables XC1 to use plant-derived S-methylmethionine for l-methionine biosynthesis, whereas MetHaHb enables XC1 to use vitamin B12 supplied by a neighboring bacterium for l-methionine biosynthesis in co-culture. Expression analyses showed that mesMXD was the only homocysteine methyltransferase-associated operon that responded to l-methionine availability, and its expression also decreased when S-methylmethionine- or vitamin B12-dependent pathways supported l-methionine biosynthesis. Comparative genomic analysis further showed that the three-homocysteine methyltransferase configuration is conserved in Xanthomonas and is also present in other plant-associated bacteria. Together, these findings show that a plant pathogen can coordinate endogenous, plant-derived, and microbially supported homocysteine methyltransferase pathways to maintain l-methionine biosynthesis, providing a metabolic strategy for adaptation to plant-associated environments.

Methionine

CRISPR/Cas9-Mediated Generation and Characterization of an Ent2*/CyO Drosophila melanogaster Strain.

In this study, a CRISPR/Cas9-based genome-editing approach was used to introduce mutations in the equilibrative nucleoside transporter 2 (Ent2) gene in Drosophila melanogaster. Guide RNAs targeting the coding region of Ent2 were designed and co-injected with Cas9 mRNA into w1118 embryos. Mutant alleles were identified by Sanger sequencing and maintained as a stable Ent2*/CyO heterozygous line using a balancer chromosome. Subsequently, we evaluated body weight, climbing ability, survival rate, and the activities of superoxide dismutase (SOD) and catalase (CAT) in fruit flies at 22 °C and 25 °C, respectively. The results indicate that at both 22 °C and 25 °C, the body length and weight of Ent2*/CyO fruit flies were significantly reduced compared to the w1118, and their development was delayed. At 22 °C, the overall lifespan of Ent2*/CyO flies was slightly longer than that of the w1118, whereas at 25 °C, no significant difference was observed. Regarding locomotor ability, the climbing performance of heterozygous flies was significantly lower than that of the w1118 at both temperatures, with males being more severely affected. In addition, the antioxidant enzyme activities of CAT and SOD in Ent2*/CyO fruit flies were significantly reduced, indicating a clear impairment of antioxidant capacity. These results describe the phenotypic profile of a CRISPR-generated Ent2 mutant line and demonstrate the feasibility of combining genome editing with balancer chromosome strategies in Drosophila. This study provides a methodological framework and a genetic resource for future investigations of genes associated with metabolism and environmental responses.

Animals

The causal relationships and potential pathways between birth weight and cardiovascular diseases: A human genomics study.

The causal relationships and potential pathways between birth weight (BW) and various cardiovascular diseases (CVDs) remain unclear, particularly when discriminating maternal and fetal contributions of BW to CVDs. Leveraging the genome-wide association studies (GWASs) of BW (N = 321,223) and a range of CVDs (ncases = 43,676-181,522), we performed a 2-sample Mendelian randomization (MR) analysis to estimate the causal effect of BW, fetal-specific BW, and maternal-specific BW on coronary artery disease (CAD), myocardial infarction (MI), heart failure (HF), atrial fibrillation (AF), and stroke. Furthermore, we applied a stepwise MR analysis approach to assess the potential involvement of childhood body mass index (CBMI) and age at menarche (AAM) in the causal pathways from BW to CVDs, while considering adult BMI. Finally, we performed colocalization analyses to justify the different biological mechanisms of maternal-specific and fetal-specific BW. The 2-sample MR analysis revealed that genetically predicted higher BW per standard deviation (SD) was associated with a decreased risk of CAD (odds ratio [OR] = 0.804, 95% confidence interval [CI]: 0.731-0.883), MI (OR = 0.720, 95% CI: 0.638-0.814), and stroke (OR = 0.900, 95% CI: 0.823-0.985), but an increased risk of AF (OR = 1.279, 95% CI: 1.160-1.410). Similar associations were observed for fetal-specific/maternal-specific BW. The stepwise MR analysis indicated that CBMI and AAM could serve as factors linking BW/fetal-specific BW and CVDs, albeit in different roles, by displaying an indirect causal effect through adult BMI. However, for maternal-specific BW, our results failed to support a causal effect on CBMI or AAM. Colocalization analyses supported the distinct biological mechanisms for maternal-specific and fetal-specific BW by showing different causal genes. The study suggested that both fetal genotype and intrauterine environmental exposure contribute to the causal associations. Additionally, AAM and CBMI may play a role in the pathways linking BW and CVDs, though the effect was only observed for fetal-specific BW.

Humans

Strong phylogenetic signal from chloroplast genomes of three Barringtonia species provides the first genomic resources for their conservation.

BACKGROUND: The genus Barringtonia (Lecythidaceae) is a vital component of tropical coastal forests and mangrove ecosystems. Among its members, B. racemosa and B. fusicarpa are classified as Endangered and Vulnerable, respectively, due to habitat degradation and anthropogenic pressures, underscoring the urgent need for genetic studies to guide conservation. Chloroplast (cp.) genomes serve as essential resources for phylogenetic reconstruction and conservation genetics. However, the scarcity of cp. genome data for Barringtonia has limited comprehensive evolutionary and conservation-oriented investigations. RESULTS: We assembled and annotated the first complete cp. genomes of B. racemosa, B. fusicarpa, and B. acutangula. All three genomes exhibit the typical quadripartite structure, ranging from 158,959 bp (B. racemosa) to 159,837 bp (B. acutangula), and contain 132 genes (87 protein-coding, 37 tRNA, 8 rRNA) with a GC content of 36.68%-36.86%. Collinearity and IR boundary analyses revealed high structural conservation without large-scale rearrangements. Interspecific sequence-level variations were detected in simple sequence repeats (SSRs) and long repeats. Nucleotide diversity (π) analysis identified highly polymorphic regions, including rpl20 (π = 0.080), rpoA (π = 0.064), rps3 (π = 0.063), and ndhF (π = 0.060), which represent promising molecular markers for population genetics within the genus. Codon-based selection analyses (Ka/Ks) showed that all protein-coding genes are under strong purifying selection (mean Ka/Ks 0.32-0.37), with no evidence of positive selection. Pairwise genetic distances (p-distances) among Barringtonia species are extremely low (mean 0.0046), while distances to the related genus Bertholletia are ~ 6-fold higher, supporting their generic distinction. CONCLUSIONS: Phylogenetic analysis robustly supports Barringtonia as a monophyletic clade (bootstrap = 100%), with B. racemosa and B. fusicarpa forming a sister lineage to B. acutangula. This study provides the first high-quality cp. genome resources for the two threatened Barringtonia species, revealing strong structural and sequence conservation but no direct chloroplast genomic correlates of endangerment. The identified polymorphic regions and repeat markers lay a foundation for future population genetics, phylogeographic studies, and conservation-oriented genetic management of these ecologically important coastal plants.

Genome, Chloroplast

Deleterious, protein-altering variants in GSPT2 are putatively associated with an X-linked neurodevelopmental disorder with intellectual disability, language impairment, autism, and epilepsy.

PURPOSE: Approximately 6% of individuals with neurodevelopmental disorders are predicted to be X-linked, and the GSPT2 gene, located at Xp11.22, has not yet been associated with any Mendelian disease. METHODS: To establish genotype-phenotype associations between GSPT2 and neurodevelopmental disorders, clinical investigations were performed in unrelated individuals, genomic and functional studies were conducted on the participants' blood and heterologous cell system. RESULTS: We described 6 individuals from 6 unrelated families carrying hemizygous variants in GSPT2 with intellectual disability, delayed speech and language development, autism spectrum disorder, epilepsy, or abnormal fetal neurodevelopment. Structural molecular modeling revealed significant deleterious effects of the identified variants. GSPT2 is preferentially enriched in the brain and cerebellum compared with other tissues. GSPT2-deficient H4 neuroglioma cells slow down the proliferation and downregulate the expression of cell-cycle-related genes. Transcriptomics revealed that GABAergic and calcium-signaling-related genes were significantly downregulated in GSPT2-deficient cells. Consistent with the transcriptomic data, RT-PCR analysis verified the marked downregulation of critical genes (CACNA1B, etc) in GSPT2-knockout cells and further confirmed these findings with proteomic profiling. CONCLUSION: Our data suggest a putative GSPT2-related X-linked neurodevelopmental disorders through dysregulation of cell-cycle progression and calcium/GABAergic signaling pathways.

Humans

STT3A is essential for Wnt signaling and represents a target for cancers driven by RNF43 deficiency.

Abnormalities in the Wnt pathway are major drivers of cancer. RNF43 loss-of-function mutations are frequently detected in aggressive cancers lacking targeted therapies, underscoring the need to uncover key regulators and targets of this pathway. Using a double death trap (DDT) Wnt reporter and genome-wide CRISPR screen, we identified STT3A as an essential regulator of Wnt signaling. Genetic and pharmacological inhibition of STT3A suppressed aberrant Wnt activity caused by RNF43/ZNRF3 loss. Importantly, suppression of STT3A blocked the growth of RNF43-deficient cancer cell lines, patient-derived organoids, and spontaneous tumors. Mechanistically, STT3A regulates Wnt/β-catenin signaling via LRP6, but not LRP5. Glycosylation of LRP6 by STT3A is required for Wnt ligand binding. Notably, STT3A depletion displayed milder effects on bone homeostasis, as supported by phenotypes in STT3A-deficient patients. Together, this study established STT3A as a critical Wnt regulator through LRP6 glycosylation and a therapeutic target for RNF43-deficient cancers.

Humans

The RNA-binding protein TRIM71 is essential for hearing in humans and mice and times auditory sensory organ development.

The RNA-binding protein TRIM71 is essential for brain development, and recent genetic studies in humans have identified TRIM71 as a risk gene for congenital hydrocephal-us (CH). Here, we show that monoallelic missense mutations in TRIM71 are associated with hearing loss (HL) and inner ear aplasia in humans. Utilizing conditional Trim71 knockout mice carrying a CH and HL-associated mutation, we demonstrate that loss of TRIM71 function during early otic development (embryonic day 9 to 10) causes severe HL. While inner ear morphogenesis occurs normally in Trim71 knockout mice, we find that early otic loss of TRIM71 function disrupts the highly stereotyped timing of cell cycle exit and differentiation within the inner ear auditory sensory organ (cochlea), resulting in the premature formation and innervation of mechanosensory hair cells. Transcriptomic profiling of Trim71-deficient cochlear progenitor cells identifies Inhba and Tgfbr2 as targets of TRIM71 repression, and our analysis of Inhba-Tgfbr1 double knockout mice indicates that TRIM71 maintains hair cell progenitors in a proliferative and undifferentiated state by restricting TGFβ-type signaling. Characterization of hair cells and their associated neurons in adult Trim71 knockout mice revealed reduced presynaptic terminals and neuronal degeneration in the outer hair cell region, providing a basis for the observed hearing deficits in Trim71 knockout mice.

Animals