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Helgason, T.

Publications and source records attributed to Helgason, T..

2 recordsLinked to original sources

The W-index: a novel tool to evaluate gender equity in STEM research

Gender inequities in scientific research persist, from citation indices to collaboration networks and funding success. Current estimates for achieving equal representation remain in timescales of decades to centuries. To help individuals and groups improve their gender representation in a shorter timeframe, we present the W-index, a simple metric to evaluate gender ratios, and specifically the representation of women, in research collaborations and other aspects of scientific life. Here it is applied to three case studies: internal collaborations derived from six years of research outputs across a university, co-author groups from 60 years of publications across a journal collection, and supervisor-student relationships over 60 years. Despite contrasting sources, these datasets show common features: W-index increases as the proportion of women increases W-index also increases with age or career stage, and women have a consistently higher W-index compared to men. We finish with reflections and recommendations for individuals, organisations, and funding bodies to action positive and timely change towards gender equity.

scientific communication and education↗

AMF primes immune genes against Puccinia hordei (Brown rust) in Hordeum vulgare but does not reduce pathogen burden

Barley (Hordeum vulgare) is susceptible to Puccinia hordei (leaf rust), a biotrophic foliar pathogen contributing to global yield losses. With rising food demand and increasing disease pressure, sustainable crop protection strategies are urgently needed to support UN Sustainable Development Goal 2: Zero Hunger. Arbuscular mycorrhizal (AM) fungi, including Rhizophagus irregularis, form symbioses with barley roots and can modulate host immunity through mycorrhiza-induced resistance (MIR). Here, we tested whether R. irregularis colonisation alters barley growth and defence responses during P. hordei infection. AM fungal colonisation did not significantly reduce disease severity or mitigate pathogen-associated biomass loss at a single post-infection time point. However, co-infected plants showed enhanced expression of defence genes (PR1, PR2, PR3 and WRKY28), which remained low in plants colonised by AM fungi alone, consistent with immune priming. RNA sequencing revealed AM fungal-associated reprogramming of the leaf transcriptome, including enrichment of defence, metabolism and ubiquitination-related processes. These results indicate that R. irregularis reshapes barley immune regulatory networks at transcriptional and post-translational levels. Although these molecular changes did not translate into measurable phenotypic protection within the short experimental timeframe, they highlight the complexity and context dependence of MIR in cereal-rust interactions.

plant biology↗