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Mowing Improves Photosynthetic Rate and Biomass Production in High-density Sweet Sorghum at the Heading-stage

  • HE Zi-Ji ,
  • WU Han-Yu ,
  • XUN Zhi-Tiao ,
  • HU Ting-Ting ,
  • YU Yang-Wei ,
  • ZHANG Ya-Li ,
  • JIANG Chen-Dao
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  • 1Agricultural College of Shihezi University, Shihezi City, Xinjiang 832003, China; 2State Key Laboratory of Plant Diversity and Specialty Crops/China National Botanical Garden, Institute of Botany, Chinese Academy of Sciences, Beijing 100093, China; 3School of Modern Agricultural Sciences, University of Chinese Academy of Sciences, Beijing 100049, China

Received date: 2025-02-04

  Revised date: 2025-05-12

  Online published: 2025-06-24

Abstract

INTRODUCTION: Light intensity is an important environmental factor affecting plant photosynthesis. High-density planting, an important crop cultivation practice for high yields, can reduce canopy light intensity. Under field conditions, canopy light intensity can affect yield formation by influencing the rate of photosynthesis and the number of plant tillers. Given the large size of sweet sorghum plants and the tendency of the canopy to be depressed, we hypothesized that mowing could help to improve photosynthetic rate and tillering, and thus population biomass formation, by improving the light environment within the canopy in high-density planted sweet sorghum. RATIONALE: There is currently a serious shortage of high-quality forage in China. Sweet sorghum, a high quality forage crop ideal for silage, has attracted considerable attention due to its high biomass production and excellent palatability. This study aims to elucidate the patterns and physiological-ecological mechanisms by which mowing increases the population biomass of sweet sorghum, thus providing a theoretical basis for high-yield sweet sorghum cultivation. RESULTS: With increasing planting density, the main stem height of sweet sorghum increases, while stem diameter and leaf area decrease, accompanied by a reduction in the number of tillers. At the same time, higher planting density reduces canopy light intensity, leaf photosynthetic performance and fresh weight per plant, although fresh forage yield increases significantly. Mowing significantly increases the number of tillers in all density treatments and reduces tiller mortality. In addition, mowing significantly improves canopy light conditions, leaf photosynthetic efficiency and plant fresh weight in densely planted sweet sorghum, further increasing fresh grass yield. Analysis shows that average canopy light intensity and net photosynthetic rate of functional leaves on the main stem are the main factors influencing actual tiller number and main stem fresh weight, respectively. CONCLUSION: High density planting is an important cultivation measure for high yields of sweet sorghum. Mowing can improve the light environment within the canopy of densely planted sweet sorghum, thereby increasing the photosynthetic rate and the number of tillers per plant, and further increasing the population biomass.

Cite this article

HE Zi-Ji , WU Han-Yu , XUN Zhi-Tiao , HU Ting-Ting , YU Yang-Wei , ZHANG Ya-Li , JIANG Chen-Dao . Mowing Improves Photosynthetic Rate and Biomass Production in High-density Sweet Sorghum at the Heading-stage[J]. Chinese Bulletin of Botany, 0 : 1 -0 . DOI: 10.11983/CBB25016

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References

[1]郭智慧, 董树亭, 王空军, 刘鹏, 张吉旺(2008).刈割对不同类型玉米再生分蘖及产量和品质的影响.玉米科学, 无:104-108. [2]郝怀庆, 张汝, 卢呈, 罗洪, 李志刚, 尚丽, 王宁, 刘智全, 吴小园, 景海春(2022).甜高粱育种研究进展及未来展望.植物学报, 57:774-784. [3]贺佳奇, 白羿雄, 姚晓华, 姚有华, 安立昆, 王玉琴, 王小萍, 李新, 崔永梅, 吴昆仑(2024).刈割对青稞恢复特性及籽粒和秸秆产量品质特性的影响.作物学报, 50:747-755. [4]李春宏, 苏衍菁, 张培通, 王仪明, 郭文琦, 殷剑美, 韩晓勇, 王立, 火恩杰(2018).不同刈割时期对甜高粱产量和品质的影响.南方农业学报, 49:239-245. [5]李妍妍, 张喆, 丰光, 王亮, 景希强(2015).玉米不同密度下苗期分蘖处理对农艺性状和产量的影响.玉米科学, 23:107-111. [6]吴含玉, 张雅君, 张旺锋, 王克如, 李少昆, 姜闯道(2019).田间密植诱导抽穗期玉米叶片衰老时的光合作用机制.作物学报, 45:248-255. [7]王如芳, 张吉旺, 吕鹏, 董树亭, 刘鹏, 赵斌(2012).多分蘖玉米分蘖发生规律及密度和播期的影响.作物学报, 38:322-332. [8]张盼, 李霄霄, 严发能, 何远乐, 白朕卿, 吴佳文(2024).甜高粱刈割后再生及碳水化合物的分配规律.草业学报, 33:69-79. [9]Aguilar-Martinez JA, Poza-Carrion C, Cubas P(2007).Arabidopsis BRANCHED1 acts as an integrator of branching signals within axillary buds.Plant Cell, 19:458-472. [10]Evers JB, Vos J, Andrieu B, Struik PC(2006).Cessation of tillering in spring wheat in relation to light interception and red: Far-red ratio.Ann Bot, 97:649-658. [11]Finlayson SA, Krishnareddy SR, Kebrom TH, Casal JJ(2010).Phytochrome Regulation of Branching in Arabidopsis.Plant Physiol, 152:1914-1927. [12]Franklin KA, Whitelam GC(2005).Phytochromes and Shade-avoidance Responses in Plants.Ann Bot, 96:169-175. [13]Gautier H(1999).Tillering Responses to the Light Environment and to Defoliation in Populations of Perennial Ryegrass (Lolium perenneL.Selected for Contrasting Leaf Length. Ann Bot, 83:423-429. [14]Huber M, Nieuwendijk NM, Pantazopoulou CK, Pierik R(2021).Light signalling shapes plant-plant interactions in dense canopies.Plant Cell Environ, 44:1014-1029. [15]Kebrom TH, Brutnell TP, Finlayson SA(2010).Suppression of sorghum axillary bud outgrowth by shade,phyB and defoliation signalling pathways.Plant Cell Environ, 33:48-58. [16]Kebrom TH, Burson BL, Finlayson SA(2006).Phytochrome B represses Teosinte Branched1 expression and induces sorghum axillary bud outgrowth in response to light signals.Plant Physiol, 140:1109-1117. [17]Kebrom TH, Mullet JE(2015).Photosynthetic leaf area modulates tiller bud outgrowth in sorghum.Plant Cell Environ, 38:1471-1478. [18]Kim HK, Luquet D, van Oosterom E, Dingkuhn M, Hammer G(2010).Regulation of tillering in sorghum: genotypic effects.Ann Bot, 106:69-78. [19]Kim HK, van Oosterom E, Dingkuhn M, Luquet D, Hammer G(2010).Regulation of tillering in sorghum: environmental effects.Ann Bot, 106:57-67. [20]Krishna Reddy S, Finlayson SA(2014).Phytochrome B Promotes Branching in Arabidopsis by Suppressing Auxin Signaling.Plant Physiol, 164:1542-1550. [21]Li T, Liu Y, Shi L, Jiang C(2015).Systemic regulation of photosynthetic function in field-grown sorghum.Plant Physiol Biochem, 94:86-94. [22]Page V, Bloesch RM, Feller U(2012).Regulation of shoot growth,root development and manganese allocation in wheat (Triticum aestivum) genotypes by light intensity.Plant Growth Regul, 67:209-215. [23]Page V, Feller U(2016).Light intensity selectively influences the distribution and further redistribution of macro- and micronutrients in hydroponically grown wheat (Triticum aestivum L.J Plant Nutr, 39:428-437. [24]Rotili DH, Sadras VO, Abeledo LG, Ferreyra JM, Micheloud JR, Duarte G, Girón P, Ermácora M, Maddonni Gá (2021)(2021).Impacts of vegetative and reproductive plasticity associated with tillering in maize crops in low-yielding environments: A physiological framework. Field Crops Res 265, 108107..Field Crops Res, 265:108107-108107. [25]Su H, Abernathy SD, White RH, Finlayson SA(2011).Photosynthetic photon flux density and phytochrome B interact to regulate branching in Arabidopsis.Plant Cell Environ, 34:1986-1998.
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