Search bioRxiv⌕ Search

Biology subjects

Ngiam, J. J.

Publications and source records attributed to Ngiam, J. J..

2 recordsLinked to original sources

Whole-genome duplication drives biosynthetic gene cluster fragmentation and regulatory rewiring of monoterpene indole alkaloid metabolism in Strychnos

Whole-genome duplications (WGDs) reshape plant genomes by generating redundancy, after which lineage-specific architectures emerge through fractionation, gene loss and rearrangement. How specialized metabolic pathways remain functionally integrated after such large-scale restructuring remains poorly understood. This problem is especially relevant for biosynthetic gene clusters (BGCs), which physically organize specialized-metabolism genes yet can be disrupted by post-duplication rearrangement. Here, we present the first chromosome-level genomes for Loganiaceae, including near telomere-to-telomere assemblies of Strychnos ignatii and S. pubescens, together with a draft genome of the extinct species S. ridleyi. Following a lineage-specific WGD, the two extant Strychnos species evolved contrasting genome-evolutionary trajectories and metabolite profiles: S. ignatii shows expansion of monoterpenoid- and monoterpene indole alkaloid (MIA)-associated gene families and strychnine-type MIA dominance, whereas S. pubescens exhibits elevated transposable element activity associated with DNA-binding with one finger (DOF)-linked regulatory rewiring and broader sesquiterpenoid- and triterpenoid-rich chemistry. Crucially, both species retain active strychnine biosynthesis despite fragmentation of a deeply conserved alkaloid BGC in MIA-producing Gentianales, revealing how pathway function can persist after disruption of ancestral BGC architecture. Comparative metabolomic and transcriptomic pathway analyses indicate norfluorocurarine oxidase (NO) as a major divergence point associated with strychnine accumulation. Promoter analyses, yeast one-hybrid assays, and electrophoretic mobility shift assays support a model in which S. ignatii retains the canonical jasmonate-responsive MYB, MYC2/bHLH, and AP2/ERF cis-regulatory module at NO, whereas the orthologous S. pubescens promoter shows reduced capacity to recruit these activators and instead exhibits a DOF-associated architecture. Together, our results show that WGD can decouple physical cluster architecture from pathway function, allowing specialized metabolic pathways to remain active while divergent chemical phenotypes evolve through lineage-specific combinations of coding-space expansion and transposable-element-associated cis-regulatory rewiring.

evolutionary biology↗

Stabilising selection and ecological trade-offs underpin coexistence in a tropical flora

Tropical forests harbour the majority of global plant biodiversity1,2, yet the genomic mechanisms governing the assembly and maintenance of these communities remain poorly understood. Here, we assembled draft genomes for 499 angiosperm species from a lowland rainforest in Singapore, representing 67% of its flora, and integrated these with plant traits and comprehensive forest census data. Across the community, most gene families evolve under stabilising selection, with copy numbers maintained near long-term optima that differ among ecological strategies. These niche-associated genomic attractor states provide a mechanism for convergent adaptation and species coexistence. Modelling stabilising selection also identified a strong trade-off between defence and growth, indicating that pathogen pressure constrains developmental diversification. Consistent with this, species-specific genome space was enriched for resistance genes and transposable elements. In contrast, genomic processes structuring present-day plant community composition differ from those driving deep-time convergence. Genomic comparisons across forest types revealed stronger selection on defence-related pathways in old-growth primary forests and on growth-related processes in regenerating secondary forests, while community-level genomic profiles showed expansions in gene families associated with rapid responses to environmental fluctuations. Stabilising selection therefore links population-level adaptation3,4 with long-term species diversification in the tropics. Niche similarity promotes long-term coexistence, whereas local community structure is shaped by more rapid ecological filtering driven by environmental change. Taken together, these two distinct evolutionary layers provide a genomic framework for understanding how hyperdiverse rainforest floras arise and persist.

genomics↗