Comparative responses of two maize genotypes with contrasting drought tolerance to biochar application

被引:1
|
作者
Ruan, Renjie [1 ]
Lambers, Hans [2 ]
Wang, Yaosheng [1 ]
机构
[1] Chinese Acad Agr Sci, Inst Environm & Sustainable Dev Agr, State Key Lab Efficient Utilizat Agr Water Resourc, Key Lab Dryland Agr,Minist Agr & Rural Affairs Chi, Beijing 100081, Peoples R China
[2] Univ Western Australia, Sch Biol Sci, Perth, WA 6009, Australia
关键词
Biochar application; Drought stress; Apoplastic pH; Root growth; Physiological traits; SALT STRESS; GROWTH; MEMBRANE; ETHYLENE; IMPACT; ROOTS; PH;
D O I
10.1007/s42773-024-00359-6
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The impact of biochar application on plant performance under drought stress necessitates a comprehensive understanding of biochar-soil interaction, root growth, and plant physiological processes. Therefore, pot experiments were conducted to assess the effects of biochar on plant responses to drought stress at the seedling stage. Two contrasting maize genotypes (drought-sensitive KN5585 vs. -tolerant Mo17) were subjected to biochar application under drought stress conditions. The results indicated that biochar application decreased soil exchangeable Na+ and Ca2+ contents while increased soil exchangeable K+ content (2.7-fold) and electrical conductivity (4.0-fold), resulting in an elevated leaf sap K+ concentration in both maize genotypes. The elevated K+ concentration with biochar application increased root apoplastic pH in the drought-sensitive KN5585, but not in the drought-tolerant Mo17, which stimulated the activation of H+-ATPase and H+ efflux in KN5585 roots. Apoplast alkalinization of the drought-sensitive KN5585 resulting from biochar application further inhibited root growth by 30.7%, contributing to an improvement in water potential, a reduction in levels of O2-, H2O2, T-AOC, SOD, and POD, as well as the down-regulation of genes associated with drought resistance in KN5585 roots. In contrast, biochar application increased leaf sap osmolality and provided osmotic protection for the drought-tolerant Mo17, which was associated with trehalose accumulation in Mo17 roots. Biochar application improved sucrose utilization and circadian rhythm of Mo17 roots, and increased fresh weight under drought stress. This study suggests that biochar application has the potential to enhance plant drought tolerance, which is achieved through the inhibition of root growth in sensitive plants and the enhancement of osmotic protection in tolerant plants, respectively. Biochar application decreased soil exchangeable Na+ and Ca2+, but increased soil exchangeable K+ and electrical conductivity.Biochar increased apoplastic pH, but reduced root growth, stress damage and stress response during drought for the drought-sensitive KN5585.Biochar improved osmotic protection, trehalose accumulation, and fresh weight during drought for the drought-tolerant Mo17.
引用
收藏
页数:15
相关论文
共 50 条
  • [21] Galactinol synthase transcriptional profile in two genotypes of Coffea canephora with contrasting tolerance to drought
    Dos Santos, Tiago Benedito
    de Lima, Rogerio Barbosa
    Nagashima, Getulio Takashi
    de Oliveira Petkowicz, Carmen Lucia
    Carpentieri-Ppolo, Valeria
    Protasio Pereira, Luiz Filipe
    Domingues, Douglas Silva
    Esteves Vieira, Luiz Gonzaga
    GENETICS AND MOLECULAR BIOLOGY, 2015, 38 (02) : 182 - 190
  • [22] Response to drought stress of triticale and maize genotypes differing in drought tolerance
    Grzesiak, M. T.
    Hura, T.
    Rzepka, A.
    Hura, K.
    Skoczowski, A.
    Grzesiak, S.
    ACTA PHYSIOLOGIAE PLANTARUM, 2007, 29 : S17 - S17
  • [23] RESPONSE OF MAIZE GENOTYPES TO DROUGHT TOLERANCE-TESTS
    MARTINIELLO, P
    LORENZONI, C
    MAYDICA, 1985, 30 (04): : 361 - 370
  • [24] Improving maize yield and drought tolerance in field conditions through activated biochar application
    Naeem, Muhammad Bilal
    Jahan, Summera
    Rashid, Audil
    Shah, Anis Ali
    Raja, Vaseem
    El-Sheikh, Mohamed A.
    SCIENTIFIC REPORTS, 2024, 14 (01):
  • [25] The Effect of Drought on Transcriptome and Hormonal Profiles in Barley Genotypes With Contrasting Drought Tolerance
    Harb, Amal
    Simpson, Craig
    Guo, Wenbin
    Govindan, Ganesan
    Kakani, Vijaya Gopal
    Sunkar, Ramanjulu
    FRONTIERS IN PLANT SCIENCE, 2020, 11
  • [26] Comparative Proteomics of Contrasting Maize, Genotypes Provides Insights into Salt-Stress Tolerance Mechanisms
    Luo, Meijie
    Zhao, Yanxin
    Wang, Yuandong
    Shi, Zi
    Zhang, Panpan
    Zhang, Yunxia
    Song, Wei
    Zhao, Jiuran
    JOURNAL OF PROTEOME RESEARCH, 2018, 17 (01) : 141 - 153
  • [27] Metabolic Responses of Two Contrasting Lentil Genotypes to PEG-Induced Drought Stress
    Foti, Chrysanthi
    Kalampokis, Ioannis F.
    Aliferis, Konstantinos A.
    Pavli, Ourania, I
    AGRONOMY-BASEL, 2021, 11 (06):
  • [28] Comparative analysis of salinity tolerance mechanisms in two maize genotypes: growth performance, ion regulation, and antioxidant responses
    Rizk, Mosa S.
    Assaha, Dekoum V. M.
    Mekawy, Ahmad Mohammad M.
    Shalaby, Nagwa E.
    Ramadan, Ebrahim A.
    El-Tahan, Amira M.
    Ibrahim, Omar M.
    Metwelly, Hassan I. F.
    Okla, Mohammad K.
    Mariduena-Zavala, Maria Gabriela
    AbdElgawad, Hamada
    Ueda, Akihiro
    BMC PLANT BIOLOGY, 2024, 24 (01):
  • [29] Comparative Proteomic Analysis of Two Sugar Beet Cultivars with Contrasting Drought Tolerance
    Yuguang Wang
    Chunxue Peng
    Yanan Zhan
    Lihua Yu
    Mao Li
    Jing Li
    Gui Geng
    Journal of Plant Growth Regulation, 2017, 36 : 537 - 549
  • [30] Comparative analysis of drought responsive transcriptome in Brassica napus genotypes with contrasting drought tolerance under different potassium levels
    Zhu, Bo
    Xu, Huaxiang
    Guo, Xi
    Lu, Junxing
    Liu, Xingyu
    Zhang, Tao
    EUPHYTICA, 2023, 219 (02)