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R. Nagajothi

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Open access Jul 2026

Assessment of establishment techniques and varietal performance on yield and physiological traits of finger millet (Eleusine coracana L.)

Finger millet (Eleusine coracana L.) is an important climate-resilient nutri-cereal, known for its superior nutritional quality and adaptability to drought-prone environments. However, its productivity remains comparatively low due to inefficient crop establishment practices and varietal differences. The present study evaluated the effects of 3 crop establishment techniques and 4 finger millet varieties on physiological traits, growth and yield under field conditions. The location of this study carried out in SRMCAS college farm, Baburayanpettai, Chengalpattu district, India. The experimental design is split plot design. The findings revealed that improved establishment methods, particularly the System of Ragi Intensification (SRI) significantly enhanced plant growth, dry matter accumulation, chlorophyll content (SPAD), relative water content, membrane stability index and yield attributes compared to conventional direct sowing. Among the tested varieties, Paiyur 2 exhibited superior physiological performances and recorded the highest grain yield (1668 kg ha-1), whereas PR 202 showed comparatively lower adaptability and productivity under the prevailing agro-climatic conditions. The combined effect of SRI and Paiyur 2 resulted in enhanced grain and straw yield through improved resource- use efficiency, better root development and superior photosynthetic activity. SRI recorded the highest grain yield (1797 kg ha-1), while Paiyur 2 produced 1668 kg ha-1, resulting in a 10.8–57.8 % yield advantage over other varieties. The study highlights the importance of integrating suitable crop establishment techniques with high-performing varieties to improve productivity, profitability and sustainability of finger millet cultivation thereby contributing to climate- resilient agriculture and nutritional security.

D. Deepika, R. Jeyajothi, A. Rajeshkumar et al. · 0 citations
Open access Jul 2026

Trait Contributions to Yield in Rice Genotypes: Insights from PCA and Cluster Analysis with Emphasis on Pollen Fertility

Background: Rice (Oryza sativa L.) productivity is increasingly constrained by climate variability, biotic stresses and limited natural resources, necessitating the effective utilisation of genetically diverse germplasm. Traditional rice landraces possess valuable adaptive, stress-tolerant and yield-related traits; however, their potential remains largely underutilized in breeding programmes. Methods: The present investigation was conducted during the zaid season of 2025 under field conditions using 130 rice (Oryza sativa L.) landraces evaluated in an augmented experimental design. A total of 21 agronomic, physiological and reproductive traits were assessed. Genetic divergence and trait relationships were analysed using principal component analysis (PCA) and hierarchical cluster analysis to identify the major traits contributing to phenotypic variability and yield performance. Result: Eight principal components with eigenvalues greater than one explained a substantial proportion of the total phenotypic variation. The first two components contributed most of the variability and were primarily associated with plant vigour, reproductive efficiency, biomass accumulation and yield-related traits. Plant height (X3), flag leaf length (X4), internode length (X7), grains per panicle (X9), 1000-seed weight (X10) and pollen fertility (X19) were the major contributors to genotype differentiation. Cluster analysis grouped the 130 genotypes into four distinct clusters. Groups I, II and IV exhibited high pollen fertility and superior yield performance, whereas Group III showed lower pollen fertility and poor yield traits. PCA biplot analysis further revealed a close association of high-yielding genotypes with pollen fertility, biomass traits and physiological efficiency. pollen fertility emerged as a key trait influencing genetic divergence and yield performance. The genetically diverse and superior-performing genotypes identified in this study represent valuable resources for rice improvement programmes aimed at enhancing productivity and adaptability.

R. Mahendran, B. Hariharan, K. Satheeskumar et al. · 0 citations