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Biology subjects

Rana, S. K.

Publications and source records attributed to Rana, S. K..

3 recordsLinked to original sources

Canalized gene regulatory networks stabilize floral polymorphism and enable modular transgressive expression

O_LIFloral polymorphisms frequently persist across heterogeneous environments despite ongoing gene flow, yet the regulatory mechanisms maintaining discrete phenotypes remain unclear. We tested whether alternative flower-colour morphs in Stellera chamaejasme L. are maintained by canalized gene regulatory architectures that stabilize expression around morph-specific optima. C_LIO_LIWe used a pan-transcriptomic and eco-evolutionary framework integrating genome-wide gene expression profiling, co-expression network analysis, functional enrichment, ortholog-based phylogenomics, and variance-based modeling of regulatory canalization and transgressive expression to quantify regulatory variation across morphs. C_LIO_LITranscriptomic variation was structured primarily by morph identity rather than geography, indicating consistent morph-associated regulatory programs. Parental morphs showed reduced within-morph variance in gene co-expression modules, consistent with strong regulatory constraint at the network level. In contrast, a naturally occurring mosaic morph exhibited extensive non-additive and predominantly transgressive expression, with most genes falling outside the parental range. This transgressive signal was modular, with most networks remaining stable while a subset showed elevated variance and disrupted inheritance. Functional analyses further reveal that floral pigmentation is embedded within broader metabolic and stress-response pathways, linking color polymorphism to coordinated physiological states and ecological differentiation. C_LI

plant biology↗

Forecasting hotspots of grassland suitability under climate change for restoration

[bullet] Local species-climate relationships are often considered in restoration management. However, as climate change disrupts species-climate relationships, identifying factors that influence habitat suitability now and into the future for individual species, functional groups, and communities will be increasingly important for restoration. This involves identifying hotspots of community suitability to target seed sourcing and restoration efforts. [bullet]Using ensemble species distribution modeling (eSDM), we analyzed 26 grassland species commonly used in restoration to identify bioclimatic variables influencing their distributions. We predicted habitat suitability under current and future (2050) climates and identified hotspots where diverse species and functional group suitability was greatest. These hotspots of habitat suitability were then overlaid with estimates of landscape connectivity and protected status to quantify potential suitability for restoration now and into the future. [bullet]Temperature and precipitation during warmer quarters largely influenced grassland species habitat suitability. Hotspots of grassland habitat suitability were identified in Minnesota, North Dakota, and South Dakota, with projected northward shifts under future climate scenarios. Overlaying these hotspots with estimates of landscape connectivity and protected status revealed limited connectivity and protection, highlighting regions to prioritize for restoration and conservation efforts. [bullet]Leveraging an understanding of species relationship with climate, this research emphasizes the importance of quantifying connectivity and protected status across aggregated hotspots of species suitability for conservation and restoration. Identifying these hotspots now and into the future can be used to prioritize regions for seed sourcing and restoration, ensuring long-term maintenance of functional ecosystems across grassland communities.

ecology↗

Pleistocene glaciation advances the younger temporal dimension of species diversification in a major biodiversity hotspot

O_LIThe expansive Himalayan-Hengduan Mountains (HM) and Qinghai-Tibet Plateau (QTP) form a biodiversity hotspot imperiled by global change. The species diversity, resulting from myriad factors led to plant diversification from 10 million years ago till now. However, despite understanding speciation timing better, a lack of in-depth population-level studies and a dearth of organismal sampling among closely related species and populations leaves an incomplete view of diversification trends and biotic influences. C_LIO_LIWe delve into the complex factors influencing diversification through genomic and eco-morphological analysis within the Stellera chamaejasme L. complex, known for its significant floral diversity. C_LIO_LIOur results uncover four cryptic species, indicating a more recent and younger diversification period ([~]2.67-0.9 Mya), driven by Pleistocene glaciation and a complex set of interacting biotic factors. These factors prompted allopatric speciation and advocated cyclical warming-cooling episodes along latitudinal and altitudinal gradients throughout the Pleistocene. C_LIO_LIThe study emphasizes the existence of cryptic species within these mountains, broadening our understanding of species diversification to more recent than previously recognized. This novel perspective may reshape evolutionary paradigms in plant science. Additionally, it also brings to light concerns over future warmings possible impacts on alpine species distribution and speciation, underlining the urgency for increased conservation efforts. C_LI

evolutionary biology↗