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Biomedical subjects

Yu Liang

Publications and source records attributed to Yu Liang.

4 recordsLinked to original sources

Hijacking pre-tRNA enables LTR-retrotransposon-initiated constitutive heterochromatin formation.

Pericentric heterochromatin serves as a fundamental component of eukaryotic chromosomes, endowing specialized genomic architecture with broad functional consequences. Although it is universally marked by H3K9me3 modification, the underlying pericentric DNA sequences diverge substantially across species. Here, by leveraging a transposition reporter system combined with a genome-wide RNA interference (RNAi) screen, we identified a specialized mechanism for recruiting SUV39H methyltransferase to initiate pericentric heterochromatin formation. This pathway depends on a highly ordered complex comprising the Puf68, pre-transfer RNAs (tRNAs), and the primer binding site (PBS). Puf68 binds with high affinity to poly-U tracts in pre-tRNA 3' trailer, forming a Puf68/pre-tRNA complex that subsequently base-pairs with the PBS of nascent long terminal repeat (LTR)-retrotransposons. Through direct interaction, Puf68 recruits Su(var)3-9 to these regions, catalyzing H3K9 trimethylation. Notably, Puf68 is sufficient to initiate de novo heterochromatin assembly both at pericentric and ectopically integrated LTR-retrotransposon regions. Our findings not only uncover a previously unrecognized mechanism of heterochromatin initiation but also resolve a long-standing question of how hosts harness nascent LTR-retrotransposon transcripts.

Heterochromatin

Male accessory gland proteins in Grapholita molesta: Identification and reproductive functional validation of four accessory gland-specific lipases.

Accessory gland proteins (Acps), synthesized in the male accessory glands (AGs), are transferred to females via spermatophores during mating and elicit diverse post-mating physiological and behavioral responses. However, Acps have not been comprehensively characterized in Grapholita molesta, a cosmopolitan orchard pest. Here, using data-independent acquisition mass spectrometry, we describe an integrated proteomic approach combining comparative AG analyses (virgin vs. newly mated) with spermatophore profiling to identify Acps in G. molesta. According to the established screening criteria, we identified 83 confirmed Acps, which were classified into nine categories. Tissue-specific expression patterns of 20 randomly selected Acp genes were evaluated, revealing that these genes were specifically or highly expressed in male AGs. Among the 83 confirmed Acps, four Acps harbored the PLN02872 superfamily domain and were classified into the canonical lipase family. Notably, their transcripts were all highly expressed in the AGs during the pre-maturation stage. These four Acps were selected for preliminary validation of their male reproductive functions. RNAi-mediated knockdown of three out of four lipase genes in G. molesta males significantly decreased the fertility of mated females, with phenotypes including a significant reduction in egg production and egg hatching rate. This study provides a comprehensive catalog of high-confidence Acps, lays a foundation for subsequent in-depth functional characterization of these reproductive proteins, and offers promising molecular targets for the development of novel genetic regulation-based integrated pest management strategies.

Animals

Kaposi Sarcoma-Associated Herpesvirus Is Not Detected in Osteosarcoma From KSHV-Endemic African Countries and the Non-Endemic United States Populations.

Osteosarcoma is an aggressive primary malignant bone tumor of poorly defined etiology that predominantly affects adolescents and young adults. A viral cause has long been proposed, and a recent study from Xinjiang, China, reported frequent detection of Kaposi sarcoma-associated herpesvirus (KSHV) in Uyghur osteosarcoma cases, suggesting a possible association in this KSHV-endemic population. Whether this association extends to broader populations remains unknown. Our study investigated the presence of KSHV in osteosarcoma specimens from KSHV-endemic African countries (Cameroon, Kenya, South Africa, Zambia) and the non-endemic United States. A total of 356 formalin-fixed paraffin-embedded and fresh-frozen specimens were retrieved or prospectively collected. In 77 selected high-quality specimens, KSHV infection was assessed by immunohistochemistry for LANA1 and by qPCR targeting 5 viral open reading frames (ORF25, ORF26, ORF37, ORF65, and ORF73). LANA1 expression was undetectable in all tumors. Using qPCR, 75/77 specimens were negative for all targets, 1/77 excluded due to insufficient remaining DNA quantity to perform the assay, and 1/77 positive across all five targets. Additionally, we studied the KSHV seroprevalence in a separate cohort comprised of 49 sera obtained from individuals with osteosarcoma from Zambia (n = 39) and the United States (n = 10). We measured by ELISA the presence of specific antibodies against four KSHV antigens: K8.1, KCP, VCA, and LANA1. KSHV seropositivity was detected in 15/39 individuals from Zambia and none from the United States. In the absence of compelling evidence, our findings could not support an association between KSHV infection and osteosarcoma in our study population.

Humans

Investigating the degradation potential of microbial consortia for perfluorooctane sulfonate through a functional "top-down" screening approach.

Perfluorooctane sulfonate (PFOS) is a prominent perfluorinated compound commonly found in the environment, known to pose various risks to human health. However, the removal of PFOS presents significant challenges, primarily due to the limited discovery of bacteria capable of effectively degrading PFOS. Moreover, single degradation bacteria often encounter obstacles in individual cultivation and the breakdown of complex pollutants. In contrast, microbial consortia have shown promise in pollutant degradation. This study employed a continuous enrichment method, combined with multiple co-metabolic substrates, to investigate a microbial consortium with the potential for PFOS degradation. By employing this methodology, we effectively identified a microbial consortium that demonstrated the capacity to reduce PFOS when exposed to an optimal concentration of methanol. The consortium predominantly comprised of Hyphomicrobium species (46.7%) along with unclassified microorganisms (53.0%). Over a duration of 20 days, the PFOS concentration exhibited a notable decrease of 56.7% in comparison to the initial level, while considering the exclusion of adsorption effects. Furthermore, by comparing the predicted metabolic pathways of the microbial consortium with the genome of a known chloromethane-degrading bacterium, Hyphomicrobium sp. MC1, using the KEGG database, we observed distinct variations in the metabolic pathways, suggesting the potential role of the unclassified microorganisms. These findings underscore the potential effectiveness of a "top-down" functional microbial screening approach in the degradation of stubborn pollutants.

Fluorocarbons