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de las Heras Martinez, G.

Publications and source records attributed to de las Heras Martinez, G..

2 recordsLinked to original sources

How motile bacteria move water in soil

Although rhizosphere microbiomes are known to enhance plants resistance to water stress, it is believed that only fungi actively contribute to the transport and uptake of water. We investigated the biomechanical impact of bacterial motility on water transport in soil by combining surface tension measurements and water infiltration experiments in soil microcosms. We observed that flagellar-based motility in the of the rhizobacteria Bacillus subtilis cells reduces the apparent surface tension of fluids by up to 15%. The effect reported depends on cell density and swimming speed, confirming its biomechanical origin, and was able to accelerate water infiltration and rewetting of soil. We conclude that Bacillus subtilis facilitates soil water transport through the deformation of air water interfaces in pores. SignificanceWater and light limitations to photosynthesis rarely occur simultaneously enabling plants in arid environments to allocate a greater proportion of assimilated carbon to belowground growth, particularly to rhizodeposition. Using microbial activity to convert chemical energy into mechanical work within soil pores offers a major opportunity for improving water use efficiency in agriculture, especially as farming shifts from polluting, energy-intensive mineral fertilisers toward resilient biological fertilisation alternatives.

biophysics↗

Growth under constraints: root tip development controls trade-offs between speed and mechanical efficiency

Relationships between root tip development--particularly tip shape--are thought to play a key role in enabling plants to overcome soil mechanical resistance. However, correlations between root tip morphology and the ability to penetrate compact or hard soils have remained inconsistent. This study applies a new quantitative framework to growth kinematics data from six plant species, analysing the trade-offs between frictional energy loss, growth stability, and reduced root elongation rates. A shorter root elongation zone can reduce the fraction of the mechanical energy lost to friction, but this is done at the expense of the elongation rate. A sharper tip or increased radius can help roots maintain the elongation rate at no energetic cost, but these strategies come with the cost of growth instability (tortuous roots) and decrease in specific root length respectively. During establishment, root strategies may therefore occupy a 2-dimensional trait space in which the mechanical efficiency of growth is balanced against the explorative-exploitative trade-off. HighlightsGrowth and form of root tips explain how plants overcome mechanical resistance from the soil Trade-offs link the energy lost by friction, growth stability and elongation rate of roots Larger roots allow faster growth independently of these trade-offs New framework formalises plants strategies to acquire soil resources List of symbols O_TBL View this table: org.highwire.dtl.DTLVardef@2df502org.highwire.dtl.DTLVardef@130848eorg.highwire.dtl.DTLVardef@4ec7deorg.highwire.dtl.DTLVardef@23e5eeorg.highwire.dtl.DTLVardef@ccaae7_HPS_FORMAT_FIGEXP M_TBL C_TBL

plant biology↗