4.6 Article

Bioenergy sorghum's deep roots: A key to sustainable biomass production on annual cropland

Journal

GLOBAL CHANGE BIOLOGY BIOENERGY
Volume 14, Issue 2, Pages 132-156

Publisher

WILEY
DOI: 10.1111/gcbb.12907

Keywords

bioenergy; nutrients; roots; sorghum; transcriptome

Funding

  1. Advanced Research Projects Agency Energy [DE-AR0000823]
  2. U.S. Department of Energy -Biological and Environmental Research Office of Science [DE -SC0018409]
  3. DOE Great Lakes Bioenergy Research Center [DE-SC0018409]

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Bioenergy sorghum has a deep and extensive root system that can grow continuously in the soil, accumulating more biomass during a long growing season. The root system plays a crucial role in nutrient uptake and could help restore soil organic carbon levels and improve soil productivity on annual cropland.
Bioenergy sorghum has high biomass yield potential, drought resilience, good nitrogen use efficiency, and a root system that contributes to the accumulation of soil organic carbon. In this study, field grown bioenergy sorghum root systems were analyzed during the growing season to characterize their depth, biomass. morphology, anatomy, and gene expression profiles. Bioenergy sorghum roots grew continuously during a 155-day growing season producing similar to 175 nodal roots, accumulating similar to 7 Mg of dry biomass per hectare, and reaching >2 m deep in the soil profile. Nodal roots within 20 cm of the stem were 1-5 mm in diameter, whereas roots deeper in soil profiles were enriched in lateral roots with small diameters (similar to 30-500 mu m) enabling growth through soil macropores. In older field-grown plants, roots with intact endodermal, vascular and inner root tissues were surrounded by degraded or aerenchymafilled epidermal and cortical cell layers. Transcriptome analysis of nodal. surface, and deep roots identified >2,500 differentially expressed genes involved in root growth, transport, adaptation, defense, and AMF-root interaction. Deep roots (180-240 cm) differentially expressed genes that regulate lateral root growth. Surface roots (0-20 cm) located mid-row differentially expressed genes involved in nitrate transport, whereas ammonium transport genes were expressed in surface and deep roots and genes involved in phosphate transport were expressed in nodal, surface, and deep roots. Overall, bioenergy sorghum's long growing season enables root systems to grow deeper and accumulate more biomass than annual grain crops such as maize, attributes that could help restore annual cropland soil organic carbon levels and improve soil productivity. Deep roots active in nutrient transport are positioned to take-up fertilizer leached deep into soil profiles mitigating potential nutrient run-off. Bioenergy sorghum's large and deep root system is a key to sustainable production of biofuels, biopower, and bioproducts on annual cropland.

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