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Biomedical subjects

Lei Yu

Publications and source records attributed to Lei Yu.

4 recordsLinked to original sources

The complete chloroplast genome sequence and phylogenetic analysis of Amorphophallus gigas.

We sequenced the complete chloroplast genome of Amorphophallus gigas, a perennial monocotyledonous herb in Araceae, using HiFi technology. The genome is 173,034 bp in length with a GC content of 34.96%. It exhibits a typical quadripartite structure: a large single-copy (LSC) region of 95,283 bp, a small single-copy (SSC) region of 15,675 bp, and a pair of inverted repeat (IR) regions of 31,038 bp each. It encodes 130 genes (85 protein-coding, 37 tRNA, 8 rRNA). Phylogenetic analysis revealed that A. gigas is closely related to A. titanum, forming a distinct clade. This study provides valuable genomic resources for understanding the evolution of Amorphophallus and Araceae.

Complete chloroplast genome

Detection of endocytobionts inhabiting the macronucleus of Frontonia paramagna (Ciliophora, Peniculida).

Bacterial endosymbionts of Frontonia, a widely distributed ciliate genus, remain poorly characterized. Here, we investigated the endosymbiotic microbiota of a Shanghai population of Frontonia paramagna using an integrated morphological and molecular approach. Fluorescence in situ hybridization (FISH) targeting the 16S rRNA gene, coupled with V3-V4 high-throughput sequencing, consistently identified Caedimonas as the bacterial symbiont, specifically localized within the host macronucleus. FISH and transmission electron microscopy confirmed this intramacronuclear colonization with high prevalence and revealed that the symbionts lack flagella and R-bodies. Phylogenetic analysis of full-length 16S rRNA gene sequences placed the F. paramagna symbionts within a well-supported clade containing Caedimonas from divergent hosts. Comparative analysis of the 16S rRNA internal excised element (IEE) showed substantial sequence and secondary structural divergence between the Frontonia-associated lineage and other Caedimonas strains from different ciliates. We conservatively designate this lineage as Caedimonas varicaedens Fpa. These distinct molecular features suggest that the diversity and host distribution of Caedimonas are far from fully described, and genomic approaches will be necessary to evaluate species delimitation within the genus and the possible presence, distribution, and horizontal transfer of R-body genetic determinants.

16S rRNA gene

Proteogenomic features define subtypes of mantle cell lymphoma.

Mantle cell lymphoma (MCL) is a biologically heterogeneous B-cell malignancy. Although genomics and transcriptomics have delineated parts of the MCL disease spectrum, proteomics remains largely unexplored. Here, we conducted a comprehensive proteogenomic analysis integrating genomics, transcriptomics, and proteomics on peripheral blood samples from 27 patients with MCL and 4 healthy donors to investigate the translational and posttranslational dimensions of MCL. Our study identified 1296 downregulated and 468 upregulated proteins in MCL cells. The splicing pathways were significantly upregulated at both the mRNA and protein levels, suggesting a critical role for aberrant RNA splicing in MCL pathogenesis. Integration of proteomic data with genetic aberrations revealed immunoglobulin heavy chain variable mutational status and CCND1 mutation are associated with distinctive transcriptomic and proteomic profiles, which correspond to significant differences in clinical outcomes. A multiomics molecular stratification model incorporating proteomic data showed superior predictive power for patient survival compared with single-omics models (concordance index, 0.83 vs 0.74). This study provides, to our knowledge, the first comprehensive proteogenomic profile of MCL, offering novel insights into its molecular mechanisms and clinical behavior. The identification of molecular subtypes and prognostic protein signatures underscores the potential of proteomics to guide precision medicine strategies for MCL.

Humans

KSHVbook: An Information-Sharing Database for Kaposi's Sarcoma-Associated Herpesvirus.

Kaposi's sarcoma-associated herpesvirus (KSHV) is a double-stranded DNA virus belonging to the γ-herpesvirus subfamily. KSHV is the causative agent of Kaposi's sarcoma (KS), primary effusion lymphoma (PEL), multicentric Castleman's disease (MCD), and KSHV inflammatory cytokine syndrome (KICS). Since its discovery, research on KSHV has rapidly progressed, but existing information platforms relatively lack comprehensiveness and do not provide efficient analysis tools tailored for KSHV. To further promote the research on KSHV more effectively, we have developed KSHVbook (http://www.kshvbook.com), a specialized information-sharing database dedicated to KSHV. This platform offers extensive information on genes, coding sequences, proteins, and the gene regulatory region. Besides, the KSHVbook includes about 35 010 transcription factor binding sites (TFBSs), 342 010 pairs of KSHV miRNA-host target gene relationships, protein structures predicted by AlphaFold3, qPCR primers, and so on. We also develop analytical tools for viral genome regions, TFBSs, and KSHV miRNA target genes to discover previously unknown biological functions of KSHV. These analytical tools can effectively identify the potential regulatory relationships between host transcription factors and viral genes. Overall, this platform provides a centralized data resource for KSHV research by integrating multiple databases, offering accessible analysis tools, and simplifying data acquisition. The KSHVbook will continue to be updated, and more features can be found on the website.

Herpesvirus 8, Human