bioRxiv Science⌕ Search

Biology subjects

Saxton, J.

Publications and source records attributed to Saxton, J..

2 recordsLinked to original sources

Pangenome of U.S. ex-PVP and Wild Sorghum Reveals Structural Variants and Selective Sweeps Shaping Adaptation and Trait Improvement

Sorghum is a cereal crop grown for food, feed, and biofuel, yet the genomic diversity of elite commercial lines remains underexplored. Here, we assembled a sorghum pangenome from long-read sequences of 46 U.S. ex-Plant Variety Protection Act (ex-PVP) cultivars and a haplotype-resolved assembly of one wild accession. The pangenome revealed largely conserved genomic architecture across elite lines but identified presence-absence variations (PAVs) in 28% of gene families, including genes involved in stress responses and starch metabolism, such as STARCH BRANCHING ENZYME I (SBE1). Selective sweep analyses detected strong signals at key flowering-time loci (Ma1/SbPRR37, Ma2, Ma6) and circadian/light regulators (PHOT1, DET1, XAP5), with PHYA showing copy number variations (CNVs). Analysis of 24 wild accessions, beyond the core pangenome panel, detected CNVs in MULTIDRUG AND TOXIC COMPOUND EXTRUSION (MATE) transporters, potentially reflecting selection or breeding for enhanced herbicide detoxification. These results highlight breeding-shaped regions and position the pangenome as a resource for sorghum improvement.

genomics↗

Soil depth determines the microbial communities in Sorghum bicolor fields

Sorghum bicolor, an important global crop, adapted to thrive in hotter and drier conditions than maize or rice, has deep roots that interact with a unique and stratified soil microbiome that plays a crucial role in plant health, growth, and carbon storage. Microbiome studies on agricultural soils, particularly fields growing S. bicolor, have been mostly limited to surface soils (<30 cm). Here we investigated the abiotic factors of soil properties, field location, depth, and the biotic factors of sorghum type across 38 genotypes on the soil microbiome. Utilizing 16S rRNA gene amplicon sequencing, our analysis reveals significant changes in microbial composition and decreasing diversity at increasing soil depths within S. bicolor regardless of genotype or fields. Notably, specific microbial families, such as Thermogemmatisporaceae and an unclassified family within the ABS-6 order, were enriched in deeper soil layers beyond 30 cm. Additionally, microbial richness and diversity declined with depth, reaching a minimum at the 60 - 90 cm layer, with layers beyond 90 cm increasing in alpha diversity. These findings highlight the importance of soil depth in agricultural soil microbiome studies.

microbiology↗