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Kolanowska, M.

Publications and source records attributed to Kolanowska, M..

3 recordsLinked to original sources

Environmental drivers of heritable trait variation and lag of adaptation to climate in Hordeum murinum

1. Most plant species are genetically differentiated among populations, often reflected by phenotypic trait variation that corresponds to local adaptation. Yet the strength of local adaptation and heritable contribution to phenotypic traits vary across traits, species, and environments. Additionally, climate change is rapidly altering environmental conditions, and the climate may shift faster than populations can adapt or track the change via dispersal, resulting in adaptive lags. However, it remains unclear how widespread such adaptive lags are across plant species. 2. We focused on Hordeum murinum, an annual ruderal grass widespread in Europe. We combined continental-scale in situ measurements of 2070 plants across 207 populations with common garden experiments across two contrasting climates and two soil types to disentangle heritable variation from phenotypic plasticity and assess potential adaptive lags under climate change. 3. We found that heritable variation was pronounced in developmental traits, particularly flowering time and plant height, while seed weight, reproductive investment and SLA showed intermediate heritable contribution, and flag leaf area and total biomass were primarily plastic. Heritable trait variation was strongly associated with temperature at the populations origin, and trait clines were consistent with in situ patterns, suggesting that temperature is the main driver of genetic differentiation in H. murinum. However, we detected that fitness peaked in populations originating from warmer climates, indicating that evolutionary responses may not keep pace with rapid environmental shifts. 4. Synthesis: Our results highlight that H. murinum harbors substantial heritable variation, shaped primarily by temperature. However, the pace of evolutionary change may be insufficient to track ongoing climate change, leaving populations potentially vulnerable to future environmental conditions.

ecology↗

Climate-driven in-situ trait variation in an annual ruderal grass across Europe

O_LIPlant functional traits link environmental conditions to plant performance and adaptation. Growing evidence shows that in-situ intraspecific trait variation can be as important as differences between species, yet large intraspecific datasets measured in situ are rare. While most studies focused on plant morphological traits, contents of elemental nutrients in the seeds received much less attention so far. C_LIO_LIWe conducted a large-scale in-situ study of the widespread ruderal grass Hordeum murinum. We sampled 2070 individuals from 207 populations from a large part of the native range in Europe and Northern Africa. In-situ, we measured seed ripening phenology and morphological traits, and analyzed the content of elemental nutrients in the seeds. C_LIO_LIWe found that Hordeum murinum grew larger, produced seeds later, and had heavier seeds in colder and wetter areas. Plants in denser vegetation were taller with heavier seeds but formed fewer spikes. Seed nutrient content generally declined with seed weight and was mainly driven by climate. Soil conditions had only minor effects on plant traits and seed nutrients. Population identity explained much of the variation, indicating a possible genetic component. C_LIO_LISynthesis: Our findings provide a comprehensive view of Hordeum murinum responding to environmental gradients across its European distribution. Climatic variables, especially temperature, are key drivers for reproductive success and seed nutrient content, while local environments, such as biotic pressures, are more critical for growth-related traits. These patterns indicate that H. murinum modulates its growth and reproductive investment along environmental gradients, balancing phenology, stress tolerance, and limited competitive capacity. C_LI

ecology↗

Disrupted in Renal Carcinoma 3 (DIRC3) impacts malignant phenotype and IGFBP5/IGF-1/Akt signaling axis in differentiated thyroid cancer.

Differentiated thyroid cancers (DTCs) are malignancies with ill-defined hereditary predisposition. Some germline variants influencing the risk of DTCs localize in disrupted in renal carcinoma 3 (DIRC3), a poorly characterized long non-coding RNA (lncRNA) gene. Here, we characterized the function of DIRC3 in DTCs. We established that DIRC3 is downregulated in DTCs, and its high expression may reduce the risk of cancer recurrence in patients. DIRC3 transcripts were enriched in cell nuclei in vitro, where they upregulated insulin-like growth factor binding protein 5 (IGFBP5), a gene known to modulate the cellular response to insulin-like growth factor 1 (IGF-1). Silencing of DIRC3 in thyroid cancer cell lines produced a phenotypic dichotomy: it augmented cell migration and invasiveness, reduced apoptosis, but abrogated the MTT reduction rate. We demonstrated that the pro-migratory phenotype was produced by the downregulation of IGFBP5. Transcriptomic profiling confirmed a functional redundancy in the activities of DIRC3 and IGFBP5. Moreover, downregulation of DIRC3 enhanced the susceptibility of cancer cells to IGF-1 stimulation and promoted Akt signaling. In conclusion, DIRC3 expression alters the phenotype of thyroid cancer cells and modulates the activity of IGFBP5/IGF-1/Akt axis. We propose an interplay between DIRC3 and IGF signaling as a mechanism that promotes thyroid carcinogenesis.

cancer biology↗