The ability of maize roots to grow through compacted soil is not dependent on the amount of roots formed

Field Crops Research - Tập 264 - Trang 108013 - 2021
Dorien J. Vanhees1,2, Kenneth W. Loades2, A.Glyn Bengough2,3, Sacha J. Mooney1, Jonathan P. Lynch1
1Division of Agricultural and Environment Sciences, School of Biosciences, University of Nottingham, Sutton Bonington Campus, Leicestershire, LE12 5RD, UK
2The James Hutton Institute, Errol Road Invergowrie, DD2 5DA, UK
3School of Science and Engineering, The University of Dundee, Dundee, DD1 4HN, UK

Tài liệu tham khảo

Andrade, 1993, Leaf expansion, photosynthesis, and water relations of sunflower plants grown on compacted soil, Plant and Soil, 149, 175, 10.1007/BF00016607 Atkinson, 2020, Soil strength influences wheat root interactions with soil macropores, Plant Cell Environ., 43, 235, 10.1111/pce.13659 Atwell, 1993, Response of roots to mechanical impedance, Environ. Exp. Bot., 33, 27, 10.1016/0098-8472(93)90053-I Barraclough, 1988, Effects of a compacted subsoil layer on root and shoot growth, water use and nutrient uptake of winter wheat, J. Agric. Sci., 110, 207, 10.1017/S0021859600081235 Batey, 2009, Soil compaction and soil management - A review, Soil Use Manag., 25, 335, 10.1111/j.1475-2743.2009.00236.x Beemster, 1996, Effects of soil resistance to root penetration on leaf expansion in wheat (Triticum aestivum L.): composition, number and size of epidermal cells in mature blades, J. Exp. Bot., 47, 1651, 10.1093/jxb/47.11.1651 Bengough, 1997, Sloughing of root cap cells decreases the firctional resistance to maize (Zea mays L.) root growth, J. Exp. Bot., 48, 885, 10.1093/jxb/48.4.885 Bengough, 1991, Penetrometer resistance, root penetration resistance and root elongation rate in two sandy loam soils, Plant Soil, 131, 59, 10.1007/BF00010420 Bengough, 1993, Root elongation of seedling peas through layered soil of different penetration resistances, Plant Soil, 149, 129, 10.1007/BF00010770 Bengough, 2006, Root responses to soil physical conditions; growth dynamics from field to cell, J. Exp. Bot., 57, 437, 10.1093/jxb/erj003 Bengough, 2011, Root elongation, water stress, and mechanical impedance: a review of limiting stresses and beneficial root tip traits, J. Exp. Bot., 62, 59, 10.1093/jxb/erq350 Bingham, 2003, Morphological plasticity of wheat and barley roots in response to spatial variation in soil strength, Plant Soil, 250, 273, 10.1023/A:1022891519039 Blake, 1986, Bulk density, 363 Böhm, 1979, Methods of studying root systems, 10.1007/978-3-642-67282-8_2 Botwright Acuña, 2005, Root penetration ability of wheat through thin wax-layers under drought and well-watered conditions, Aust. J. Agric. Res., 56, 1235, 10.1071/AR05067 Brereton, 1986, The sensitivity of barley, field beans and sugar beet to soil compaction, F. Crop. Res., 13, 223, 10.1016/0378-4290(86)90024-9 Cahn, 1989, Relationship between root elongation rate and diameter and duration of growth of lateral roots of maize, Plant Soil, 119, 271, 10.1007/BF02370419 Cairns, 2004, Effect of soil mechanical impedance on root growth of two rice varieties under field drought stress, Plant Soil, 267, 309, 10.1007/s11104-005-0134-1 Carminati, 2017, Root hairs enable high transpiration rates in drying soils, New Phytol., 216, 771, 10.1111/nph.14715 Chandra Babu, 2001, Variation in root penetration ability, osmotic adjustment and dehydration tolerance among accessions of rice adapted to rainfed lowland and upland ecosystems, Plant Breed., 120, 233, 10.1046/j.1439-0523.2001.00578.x Chen, 2011, Root growth and yield of maize as affected by soil compaction and cover crops, Soil Tillage Res., 117, 17, 10.1016/j.still.2011.08.001 Chen, 2014, Root architecture alteration of narrow-leafed lupin and wheat in response to soil compaction, F. Crop. Res., 165, 61, 10.1016/j.fcr.2014.04.007 Chimungu, 2014, Large root cortical cell size improves drought tolerance in maize, Plant Physiol., 166, 2166, 10.1104/pp.114.250449 Chimungu, 2014, Reduced root cortical cell file number improves drought tolerance in maize, Plant Physiol., 166, 1943, 10.1104/pp.114.249037 Chimungu, 2015, Root anatomical phenes predict root penetration ability and biomechanical properties in maize (Zea Mays), J. Exp. Bot., 66, 3151, 10.1093/jxb/erv121 Chochois, 2015, Variation in Adult Plant Phenotypes and partitioning among seed and stem-borne roots across Brachypodium distachyon accessions to exploit in breeding cereals for well-watered and drought environments, Plant Physiol., 168, 953, 10.1104/pp.15.00095 Clark, 2000, Screening the ability of rice roots to overcome the mechanical impedance of wax layers: importance of test conditions and measurement criteria, Plant Soil, 219, 187, 10.1023/A:1004753900945 Clark, 2002, Root penetration of strong soil in rainfed lowland rice: comparison of laboratory screens with field performance, F. Crop. Res., 76, 189, 10.1016/S0378-4290(02)00039-4 Colombi, 2017, Artificial macropores attract crop roots and enhance plant productivity on compacted soils, Sci. Tot. Env., 574, 1283, 10.1016/j.scitotenv.2016.07.194 Colombi, 2017, Root tip shape governs root elongation rate under increased soil strength, Plant Physiol., 174, 2289, 10.1104/pp.17.00357 Colombi, 2018, Feedbacks between soil penetration resistance, root architecture and water uptake limit water accessibility and crop growth – a vicious circle, Sci.Total Environ., 626, 1026, 10.1016/j.scitotenv.2018.01.129 Colombi, 2019, Cortical cell diameter is key to energy costs of root growth in wheat, Plant Physiol., 180, 2049, 10.1104/pp.19.00262 Cribari-Neto, 2015, Beta regression in r, J. Stat.l Soft., 34 de Moreas, 2020, Soil compaction impacts soybean root growth in an Oxisol from subtropical Brazil, Soil Tillage Res., 200, 104611, 10.1016/j.still.2020.104611 Ehlers, 1983, Penetration resistance and root growth of oats in tilled and untilled loess soil, Soil Tillage Res., 3, 261, 10.1016/0167-1987(83)90027-2 Gao, 2016, Reduced crown root number improves water acquisition under water deficit stress in maize (Zea mays L.), J. Exp. Bot., 67, 4545, 10.1093/jxb/erw243 Gao, 2012, The effects of compaction and soil drying on penetrometer resistance, Soil Tillage Res., 125, 14, 10.1016/j.still.2012.07.006 Gao, 2016, Deep roots and soil structure, Plant Cell Environ., 39, 1662, 10.1111/pce.12684 Goss, 1977, Effects of mechanical impedance on root growth in barley (Hordeum vulgare L.): I. Effects on the elongation and branching of seminal root axes, J. Exp. Bot., 28, 96, 10.1093/jxb/28.1.96 Grzesiak, 2009, Impact of soil compaction on root architecture, leaf water status, gas exchange and growth of maize and triticale seedlings, Plant Root, 3, 10, 10.3117/plantroot.3.10 Grzesiak, 2014, Interspecific differences in root architecture among maize and triticale genotypes grown under drought, waterlogging and soil compaction, Acta Physiol. Plant., 36, 3249, 10.1007/s11738-014-1691-9 Guo, 2019, Maize with fewer nodal roots allocates mass to more lateral and deep roots that improve nitrogen uptake and shoot growth, J. Exp. Bot., 10.1093/jxb/erz258 Haling, 2013, Root hairs improve root penetration, root-soil contact, and phosphorus acquisition in soils of different strength, J. Exp. Bot., 64, 3711, 10.1093/jxb/ert200 Hamza, 2005, Soil compaction in cropping systems: a review of the nature, causes and possible solutions, Soil Tillage Res., 82, 121, 10.1016/j.still.2004.08.009 Hanbury, 2005, Growth dynamics of mechanically impeded lupin roots: does altered morphology induce hypoxia?, Ann. Bot., 96, 913, 10.1093/aob/mci243 Hatano, 1988, Relationship between the distribution of soil macropores and root elongation, Soil Sci. Plant Nutr., 34, 535, 10.1080/00380768.1988.10416469 Hochholdinger, 2004, Genetic dissection of root formation in maize (Zea mays) reveals root-type specific developmental programmes, Ann. Bot., 93, 359, 10.1093/aob/mch056 Hoffmann, 1995, Growth and phosphorus supply of sugar beet as affected by soil compaction and water retention, Plant Soil, 176, 15, 10.1007/BF00017671 Horn, 1995, Soil compaction processes and their effects on the structure of arable soils and the environment, Soil Tillage Res., 35, 23, 10.1016/0167-1987(95)00479-C Hund, 2009, Rooting depth and water use efficiency of tropical maize inbred lines, differing in drought tolerance, Plant Soil, 318, 311, 10.1007/s11104-008-9843-6 Iijima, 1991, Interspecific differences of the root system structures of four cereal species as affected by soil compaction, Japan. Jour. Crop Sci., 60, 130, 10.1626/jcs.60.130 Iijima, 1991, Effects of soil compaction on the development of rice and maize root systems, Environ. Exp. Bot., 31, 333, 10.1016/0098-8472(91)90058-V Iijima, 2000, Sloughing of cap cells and carbon exudation from maize seedling roots in compacted sand, New Phytol., 145, 477, 10.1046/j.1469-8137.2000.00595.x Iijima, 2004, Contribution of root cap mucilage and presence of an intact root cap in maize (Zea mays) to the reduction of soil mechanical impedance, Ann. Bot., 94, 473, 10.1093/aob/mch166 Jia, 2018, Greater lateral root branching density in maize improves phosphorus acquistion from low phosphorus soil, J. Exp. Bot., 69, 10.1093/jxb/ery252 Jin, 2013, How do roots elongate in a structured soil?, J. Exp. Bot., 64, 4761, 10.1093/jxb/ert286 Kirkegaard, 1992, The effect of compaction on the growth of pigeonpea on clay soils. I. Mechanisms of crop response and seasonal effects on a vertisolin a sub-humid environment, Soil Tillage Res., 24, 107, 10.1016/0167-1987(92)90096-T Kubo, 2006, Genotypic variation of the ability of root to penetrate hard soil layers among Japanese wheat cultivars, Plant Prod. Sci., 9, 47, 10.1626/pps.9.47 Kuncoro, 2014, A study on the effect of compaction on transport properties of soil gas and water. II: soil pore structure indices, Soil Tillage Res., 143, 180, 10.1016/j.still.2014.01.008 Laboski, 1998, Soil strength and water content influences on corn root distribution in a sandy soil, Plant Soil, 203, 239, 10.1023/A:1004391104778 Landl, 2017, A new model for root growth in soil with macropores, Plant Soil, 415, 99, 10.1007/s11104-016-3144-2 Lilley, 2016, Farming system context drives the value of deep wheat roots in semi-arid environments, J. Exp. Bot., 67, 3665, 10.1093/jxb/erw093 Loades, 2013, Biomechanics of nodal, seminal and lateral roots of barley: effects of diameter, waterlogging and mechanical impedance, Plant Soil, 370, 407, 10.1007/s11104-013-1643-y Lynch, 2003, Rhizoeconomics: carbon costs of phosphorus acquisition, Plant Soil, 269, 45, 10.1007/s11104-004-1096-4 Lynch, 2013, Steep, cheap and deep: an ideotype to optimize water and N acquisition by maize root systems, Ann. Bot., 112, 347, 10.1093/aob/mcs293 Lynch, 2015, Root phenes that reduce the metabolic costs of soil exploration: opportunities for 21st century agriculture, Plant Cell Environ., 38, 1775, 10.1111/pce.12451 Lynch, 2018, Rightsizing root phenotypes for drought resistance, J. Exp. Bot., 69, 327, 10.1093/jxb/ery048 Lynch, 2012, New roots for agriculture: exploiting the root phenome, Philos. Trans. R. Soc. Biol. Sci., 367, 1598, 10.1098/rstb.2011.0243 Lynch, 2015, Opportunities and challenges in the subsoil: pathways to deeper rooted crops, J. Exp. Bot., 66, 2199, 10.1093/jxb/eru508 Lynch, 2014, Root anatomical phenes associated with water acquisition from drying soil: targets for crop improvement, J. Exp. Bot., 65, 6155, 10.1093/jxb/eru162 Materechera, 1993, Field evaluation of laboratory techniques for predicting the ability of roots to penetrate strong soil and of the influence of roots on water sorptivity, Plant Soil, 149, 149, 10.1007/BF00016604 Montagu, 2001, The position of localized soil compaction determines root and subsequent shoot growth responses, J. Exp. Bot., 52, 2127, 10.1093/jexbot/52.364.2127 Mullins, 1987, Hard-setting soils, Soil Use Manag., 3, 79, 10.1111/j.1475-2743.1987.tb00715.x Nagarajah, 1987, Effects of soil texture on the rooting patterns of thompson seedless vines on own roots and on ramsey rootstock in irrigated vineyards, Am. J. Enol. Vitic., 38, 54, 10.5344/ajev.1987.38.1.54 Nagel, 2012, GROWSCREEN-Rhizo is a novel phenotyping robot enabling simultaneous measurements of root and shoot growth for plants grown in soil-filled rhizotrons, Funct. Plant Biol., 39, 891, 10.1071/FP12023 Nakhforoosh, 2014, Wheat root diversity and root functional characterization, Plant Soil, 380, 211, 10.1007/s11104-014-2082-0 Nosalewicz, 2014, The effect of compacted soil layers on vertical root distribution and water uptake by wheat, Plant Soil, 375, 229, 10.1007/s11104-013-1961-0 Panayiotopoulos, 1994, Compaction and penetration resistance of an Alfisol and Entisol and their influence on root growth of maize seedlings, Soil Tillage Res., 31, 323, 10.1016/0167-1987(94)90039-6 Pfeifer, 2014, Spring barley shows dynamic compensatory root and shoot growth responses when exposed to localised soil compaction and fertilisation, Funct. Plant Biol., 41, 581, 10.1071/FP13224 Pfeifer, 2014, Artificial pores attract barley roots and can reduce artifacts of pot experiments, J. Plant Nutr. Soil Sci. (1999), 177, 903, 10.1002/jpln.201400142 Postma, 2014, The optimal lateral root branching density for maize depends on nitrogen and phosphorus availability, Plant Physiol., 166, 590, 10.1104/pp.113.233916 R Core Team, 2018 Raper, 2005, Agricultural traffic impacts on soil, J. Terramechanics, 42, 259, 10.1016/j.jterra.2004.10.010 Rasse, 1998, Root recolonization of previous root channels in corn and alfalfa rotations, Plant Soil, 204, 203, 10.1023/A:1004343122448 Rich, 2013, Soil conditions and cereal root system architecture: review and considerations for linking Darwin and Weaver, J. Exp. Bot., 64, 1193, 10.1093/jxb/ert043 Rivera, 2019, Soil compaction induced changes in morpho-physiological characteristics of common bean, Journal of Soil Sci. Plant Nutr., 1 Saengwilai, 2014, Low crown root number enhances nitrogen acquisition from low-nitrogen soils in maize, Plant Physiol., 166, 581, 10.1104/pp.113.232603 Schenk, 2002, The global biogeography of roots, Ecol. Monogr., 72, 311, 10.1890/0012-9615(2002)072[0311:TGBOR]2.0.CO;2 Schneider, 2012, NIH Image to ImageJ: 25 yearsof image analysis, Nature Meth., 9, 671, 10.1038/nmeth.2089 Shierlaw, 1984, Effect of soil compaction on root growth and uptake of phosphorus, Plant Soil, 77, 15, 10.1007/BF02182808 Steinemann, 2015, Dynamic root responses to drought and rewatering in two wheat (Triticum aestivum) genotypes, Plant Soil, 391, 139, 10.1007/s11104-015-2413-9 Stirzaker, 1996, Soil structure and plant growth: impact of bulk density and biopores, Plant Soil, 185, 151, 10.1007/BF02257571 Suralta, 2018, Plasticity in nodal root elongation through the hardpan triggered by rewatering during soil moisture fluctuation in rice, Sci. Rep., 8, 1 To, 2005, Variation in penetrometer resistance with soil properties: the contribution of effective stress and implications for pedotransfer functions, Geoderma, 126, 261, 10.1016/j.geoderma.2004.08.006 Trachsel, 2011, Shovelomics: high throughput phenotyping of maize (Zea mays L.) root architecture in the field, Plant Soil, 341, 75, 10.1007/s11104-010-0623-8 Trachsel, 2013, Maize root growth angles become steeper under low N conditions, F. Crop. Res., 140, 18, 10.1016/j.fcr.2012.09.010 Vanhees, 2020, Root anatomical traits contribute to deeper rooting of maize under compacted field conditions, J.Exp.Bot, 71, 4243, 10.1093/jxb/eraa165 Varney, 1991, The branch roots of Zea. I. First order branches, their number, sizes and division into classes, Ann. Bot., 67, 357, 10.1093/oxfordjournals.aob.a088203 Vaz, 2011, Modeling and correction of soil penetration resistance for varying soil water content, Geoderma, 166, 92, 10.1016/j.geoderma.2011.07.016 Veen, 1990, The influence of mechanical resistance and soil water on the growth of seminal roots of maize, Soil Tillage Res., 16, 219, 10.1016/0167-1987(90)90031-8 Veen, 1992, Root-soi contact of maize, as measured by thin-section technique, Plant Soil, 139, 131, 10.1007/BF00012850 Whalley, 2005, Use of effective stress to predict the penetrometer resistance of unsaturated agricultural soils, Soil Tillage Res., 84, 18, 10.1016/j.still.2004.08.003 Whalley, 2013, Genotypic variation in the ability of wheat roots to penetrate wax layers, Plant Soil, 364, 171, 10.1007/s11104-012-1342-0 Wu, 2016, Relationships between root diameter, root length and root branching along lateral roots in adult, field-grown maize, Ann. Bot., 117, 379, 10.1093/aob/mcv185 Xiong, 2020, Variable responses of maize root architecture in elite cultivars due to soil compaction and moisture, Plant Soil, 455, 79, 10.1007/s11104-020-04673-3 York, 2013, Integration of root phenes for soil resource acquisition, Front. Plant Sci., 4, 1, 10.3389/fpls.2013.00355 Young, 1997, Mechanical impedance of root growth directly reduces leaf elongation rates of cereals, New Phytol., 135, 613, 10.1046/j.1469-8137.1997.00693.x Yu, 1995, Use of wax-petrolatum layers for screening rice root penetration, Crop Sci., 35, 684, 10.2135/cropsci1995.0011183X003500030005x Zhan, 2015, Reduced frequency of lateral branching improves N capture from low-N soils in maize, J. Exp. Bot., 66, 2055, 10.1093/jxb/erv007 Zhan, 2015, Reduced lateral root branching density improves drought tolerance in maize, Plant Physiol., 168, 1603, 10.1104/pp.15.00187