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Luigi Faino

Publications and source records attributed to Luigi Faino.

2 recordsLinked to original sources

In genomes we trust: Assessing genomic reliability within the family Nectriaceae.

Reliable evolutionary inference increasingly depends on public genome resources, and the effects of uneven assembly quality, incomplete metadata, and biased taxonomic sampling remain poorly quantified. Using the species-rich fungal lineage Nectriaceae as a model system, we analysed 1530 genome sequence assemblies to assess metadata completeness, sampling representation, and genome quality. One-third of the assemblies lacked essential metadata, sequencing was heavily skewed toward a few agriculturally important lineages, and sampling of many genera was limited or nonexistent. BUSCO and QUAST metrics revealed substantial heterogeneity in assembly quality, with widespread fragmentation and numerous assemblies falling outside expected quality thresholds. From 763 single-copy orthologs identified in 576 higher-quality genomes, we reconstructed a phylogenomic backbone and quantified gene- and site-level concordance across the tree. Although major clades were broadly recovered, extensive gene-tree discordance and a polyphyletic Fusarium nisikadoi species complex revealed unresolved boundaries and conflict among loci. These results show how data quality, incomplete sampling, and discordant genomic histories can constrain phylogenomic resolution, and provide a general framework for improving comparative genomic resources and large-scale evolutionary inference.

Gene-tree discordance

The reference genome of the human diploid cell line RPE-1.

Recent technological advances have facilitated the assembly of telomere-to-telomere (T2T) genomes. The current T2T CHM13 showcases the complete architecture of the human genome, yet its use in functional experiments is limited by discrepancies with the actual genome of the specific biological system under study. Access to reference assemblies for experimentally relevant cell lines is therefore essential in advancing sequencing-based analyses and precise manipulation, particularly in highly variable regions such as centromeres. Here, we present RPE1v1.1, the near-complete diploid genome assembly of the hTERT RPE-1 cell line, a non-cancerous human retinal epithelial model with a stable karyotype. Using high-coverage Pacific Biosciences and Oxford Nanopore Technologies long-read sequencing, we generate a high-quality de novo assembly, validate it through multiple methods, and phase it by integrating high-throughput chromosome conformation capture (Hi-C) data. Our assembly includes chromosome-level scaffolds that span centromeres for all chromosomes. Comparing both haplotypes with the CHM13 genome, we detect haplotype-specific genomic variations, including the translocation between chromosome 10 and chromosome X t(X;10)(Xq28;10q21.2) characteristic of RPE-1 cells, and divergence peaking at centromeres. Altogether, the RPE1v1.1 genome provides a reference-quality diploid assembly of a widely used cell line, supporting high-precision genetic and epigenetic studies in this model system.

Humans