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Han, G. z.

Publications and source records attributed to Han, G. z..

4 recordsLinked to original sources

Diversity and evolution of the ribovirian class Stelpaviricetes

Metatranscriptome mining has dramatically expanded the known diversity of ribovirians at all taxonomic levels. We explored in detail the class Stelpaviricetes in the phylum Pisuviricota that so far included 3 orders and 6 recognized virus families, order Stellavirales with family Astroviridae infecting vertebrates, Patatavirales with families Potyviridae, the largest known family of plant ribovirians, and Potyliviridae, and Hypofuvirales consisting of 3 families of viruses associated with phytopathogenic fungi. Using an order-specific collection of Hidden Markov Model profiles for the RNA-dependent RNA polymerase (RdRP), the hallmark protein of ribovirians, we identified 103 putative families within Stelpaviricetes, most of which share a uniform, astrovirus-like genome architecture, encoding three recognizable protein domains, the RdRP, a chymotrypsin-like protease and a single jelly roll capsid protein. The topology of the phylogenetic tree of the RdRP implies that the common ancestor of Stelpaviricetes had an astrovirus-like genome. The ancestor of the order Patatavirales acquired two additional domains, a papain-like protease and a superfamily 2 helicase, whereas the capsid protein was replaced with an unrelated one forming filamentous capsids. The ancestor of Hypofuvirales also encoded a superfamily 2 helicase and, possibly, a papain-like protease, but lost the capsid protein. Hypofuvirales might have derived from Patatavirales or evolved independently from an astro-like ancestor. For the vast majority of Stelpaviricetes identified in metatranscriptomes, host assignment remains elusive. Nevertheless, analysis of endogenous virus elements combined with information on isolated viruses provides some clues, in particular, suggesting that the common ancestor of Potyviridae and Potyliviridae had a fungal host whereas the common ancestor of Stelpaviricetes might have been a protist virus. IMPORTANCEThe enormous diversity of viruses on earth is only now coming to light through extensive metagenome and metatranscriptome mining. Using vast databases of ribovirus genomes, we performed phylogenomic analysis of the class Stelpaviricetes that includes the family of animal viruses Astroviridae and Potyviridae, the largest known family of plant viruses. We identified more than 100 family-level groups of viruses most of which have small, astrovirus-like genomes, likely, resembling the common ancestor of Stelpaviricetes. In contrast, the putative common ancestor of Potyviridae and its sister family Potyliviridae exhibits higher genome complexity that apparently emerged in viruses of fungi. The most plausible scenario for the origin of Potyviridae involves cross-kingdom horizontal virus transfer between plant-associated fungi and plants.

microbiology↗

Insertion of an invading retrovirus regulates a novel color trait in swordtail fish

For over a century, evolutionary biologists have been motivated to understand the mechanisms through which organisms adapt to their environments. Coloration and pigmentation are remarkably variable within and between species and can serve as an important window into the mechanisms of adaptation. Here, we map the genetic basis of a newly described iridescence trait in swordtail fish to a single locus. Individuals with this trait appear to sparkle as they move through the water. We find that the trait is driven by the recent endogenization of a retrovirus that inserted near the gene alkal2a. This insertion is associated with changes in the chromatin landscape, upregulation of alkal2a, and accumulation of iridescent cells that adhere to the scales. Rather than causing diseases, our results demonstrate that invading endogenous retroviruses can also regulate novel trait variation in the host. Moreover, we find that this coloration trait may act as an important signal in interactions between fish and their predators in the natural environment.

evolutionary biology↗

A wheat tandem kinase and NLR pair confers resistance to multiple fungal pathogens

Recently discovered tandem kinase proteins (TKPs) are pivotal to the innate immune systems of cereal plants, yet how they initiate plant immune responses remains unclear. This report identifies the wheat protein WTN1, a non-canonical NLR receptor featuring tandem NB-ARC domains, as crucial for WTK3-mediated disease resistance. Both WTK3 and its allelic variant Rwt4, known for conferring resistance to wheat powdery mildew and blast respectively, are capable of recognizing the blast effector PWT4, and activate WTN1 to form calcium-permeable channels, akin to ZAR1 and Sr35. This study unveils a unique plant defense mechanism wherein TKPs and associated NLRs operate as "sensor-executor" pairs against fungal pathogens. Additionally, evolutionary analyses reveal a co-evolutionary trajectory of the TKP-NLR module, highlighting their synergistic role in triggering plant immunity. One Sentence SummaryAn ancient synergistic TKP-NLR pair triggers innate immunity for multiple disease resistance in wheat.

plant biology↗

Chromosome-Level Genome Assembly of Navel orange cv. Gannanzao (Citrus sinensis Osbeck cv. Gannanzao)

Navel orange cv. Gannanzao is a variant of the navel orange cv. Newhall (C. sinensis Osbeck cv. Newhall) that exhibits an earlier maturation, making it commercially valuable. However, the underlying mechanism underneath its early maturation remains unknown. To address this question, we conducted genome sequencing and de novo assembly of navel orange cv. Gannanzao. The assembled genome sequence is 334.57 Mb in length with a GC content of 31.48%. It comprises 318 contigs (N50 = 3.23 Mb) and 187 scaffolds (N50 = 31.86 Mb). The BUSCO test demonstrates 94.6% completeness. The annotation revealed 23,037 gene models, 164.95 Mb of repetitive sequences, and 2,554 ncRNA. Comparative analysis identified 323 fruit ripening-related genes in navel orange cv. Gannanzao genome, while navel orange cv. Newhall genome contained 345 such genes. These genes were organized into 320 orthologous gene families, with 30.3% of them exhibiting differences in gene copy numbers between the two genomes. Additionally, we identified 15 fruit ripening-related genes that have undergone adaptive evolution, suggesting their potential role in advancing fruit maturation in navel orange cv. Gannanzao. Whole genome sequencing and annotation of navel orange cv. Gannanzao provides a valuable resource to unravel the early maturation mechanism of citrus and enriches the genomic resources for citrus research.

genomics↗