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One or more keywords matched the following items that are connected to Lynch, Jon Lynch
Item TypeName
Concept Nitrogen
Academic Article Opportunities and challenges in the subsoil: pathways to deeper rooted crops.
Academic Article Evolution of US maize (Zea mays L.) root architectural and anatomical phenes over the past 100 years corresponds to increased tolerance of nitrogen stress.
Academic Article Steep, cheap and deep: an ideotype to optimize water and N acquisition by maize root systems.
Academic Article Complementarity in root architecture for nutrient uptake in ancient maize/bean and maize/bean/squash polycultures.
Academic Article Root phenes that reduce the metabolic costs of soil exploration: opportunities for 21st century agriculture.
Academic Article Root foraging elicits niche complementarity-dependent yield advantage in the ancient 'three sisters' (maize/bean/squash) polyculture.
Academic Article Intensive field phenotyping of maize (Zea mays L.) root crowns identifies phenes and phene integration associated with plant growth and nitrogen acquisition.
Academic Article Reduced frequency of lateral root branching improves N capture from low-N soils in maize.
Academic Article Co-optimization of axial root phenotypes for nitrogen and phosphorus acquisition in common bean.
Academic Article Ethylene modulates root cortical senescence in barley.
Academic Article Root phenotypes for improved nutrient capture: an underexploited opportunity for global agriculture.
Academic Article Root cortical senescence decreases root respiration, nutrient content and radial water and nutrient transport in barley.
Academic Article Root Cortical Senescence Improves Growth under Suboptimal Availability of N, P, and K.
Academic Article Genotypic variation and nitrogen stress effects on root anatomy in maize are node specific.
Academic Article Nodal root diameter and node number in maize (Zea mays L.) interact to influence plant growth under nitrogen stress.
Academic Article Increased seminal root number associated with domestication improves nitrogen and phosphorus acquisition in maize seedlings.
Academic Article Root angle in maize influences nitrogen capture and is regulated by calcineurin B-like protein (CBL)-interacting serine/threonine-protein kinase 15 (ZmCIPK15).
Academic Article Root hair phenotypes influence nitrogen acquisition in maize.
Academic Article Harnessing root architecture to address global challenges.
Academic Article Theoretical evidence that root penetration ability interacts with soil compaction regimes to affect nitrate capture.
Academic Article Multi-objective optimization of root phenotypes for nutrient capture using evolutionary algorithms.
Academic Article RootSlice-A novel functional-structural model for root anatomical phenotypes.
Academic Article Integrated root phenotypes for improved rice performance under low nitrogen availability.
Academic Article Large root cortical cells and reduced cortical cell files improve growth under suboptimal nitrogen in silico.
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  • Nitrogen
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