Molecular and physiological responses of two quinoa genotypes to drought stress

被引:2
|
作者
Zhu, Xiaolin [1 ,2 ,3 ]
Liu, Wenyu [3 ]
Wang, Baoqiang [1 ,2 ,3 ]
Yang, Ling [4 ]
机构
[1] Gansu Agr Univ, Coll Life Sci & Technol, Lanzhou, Peoples R China
[2] Gansu Agr Univ, Gansu Prov Key Lab Aridland Crop Sci, Lanzhou, Peoples R China
[3] Gansu Acad Agr Sci, Lanzhou, Peoples R China
[4] Lanzhou Jiaotong Univ, Sch Biol & Pharmaceut Engn, Lanzhou, Peoples R China
基金
中国国家自然科学基金;
关键词
quinoa; drought stress; physiology; transcriptome; molecular mechanism; TRANSCRIPTION FACTOR; GENE; PROTEIN; TOOL; IDENTIFICATION; EXPRESSION; TOLERANCE; KEGG;
D O I
10.3389/fgene.2024.1439046
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Quinoa is an important economic food crop. However, quinoa seedlings are susceptible to drought stress, and the molecular mechanism of drought tolerance remains unclear. In this study, we compared transcriptomic and physiological analyses of drought-tolerant (L1) and susceptible (HZ1) genotypes exposed to 20% PEG for 3 and 9 days at seedling stage. Compared with HZ1, drought stress had less damage to photosynthetic system, and the contents of SOD, POD and CAT were higher and the contents of H2O2 and O2 -were lower in L1 leaves. Based on the RNA-seq method, we identified 2423, 11856, 1138 and 3903 (HZ1-C3-VS-T3, HZ1-C9-vs-T9, L1-C3-vs-T3 and L1-C9-vs-T9) annotated DEGs. Go enrichment was shown in terms of Biological Process: DEGs involved in biological processes such as metabolic process, cellular process, and single-organism process were most abundant in all four comparison treatments. In Molecular Function: the molecular functions of catalytic activity, binding and transporter activity have the most DEGs in all four processes. Cellular Component: membrane, membrane part, and cell have the most DEGs in each of the four processes. These DEGs include AP2/ERF, MYB, bHLH, b-ZIP, WRKY, HD-ZIP, NAC, C3h and MADS, which encode transcription factors. In addition, the MAPK pathway, starch and sucrose metabolism, phenylpropanoid biosynthesis and plant hormone signal transduction were significantly induced under drought stress, among them, G-hydrolases-66, G-hydrolases-81, G-hydrolases-78, Su-synthase-02, Su-synthase-04, Su-synthase-06, BRI1-20 and bHLH17 were all downregulated at two drought stress points in two genotypes, PP2C01, PP2C03, PP2C05-PP2C07, PP2C10, F-box01 and F-box02 were upregulated at two drought stress points in two genotypes. These results agree with the physiological responses and RNA-seq results. Collectively, these findings may lead to a better understanding of drought tolerance, and some of the important DEGs detected in this study could be targeted for future research. And our results will provide a comprehensive basis for the molecular network that mediates drought tolerance in quinoa seedlings and promote the breeding of drought-resistant quinoa varieties.
引用
收藏
页数:23
相关论文
共 50 条
  • [1] Physiological and Morphological Responses of two Quinoa Cultivars (Chenopodium quinoa Willd.) to Drought Stress
    Ali, Oudou Issa
    Fghire, Rachid
    Anaya, Fatima
    Benlhabib, Ouafae
    Wahbi, Said
    GESUNDE PFLANZEN, 2019, 71 (02): : 123 - 133
  • [2] Growth and Physiological Responses of Quinoa to Drought and Temperature Stress
    Yang, A.
    Akhtar, S. S.
    Amjad, M.
    Iqbal, S.
    Jacobsen, S. -E.
    JOURNAL OF AGRONOMY AND CROP SCIENCE, 2016, 202 (06) : 445 - 453
  • [3] Physiological, Biochemical, and Molecular Responses of Quinoa (Chenopodium quinoa Willd.) to Elicitors Under Drought Stress
    Forouzandeh, Mohamad
    Parsa, Soheil
    Mahmoodi, Sohrab
    Izanloo, Ali
    PLANT MOLECULAR BIOLOGY REPORTER, 2024, 42 (03) : 515 - 531
  • [4] Physiological Responses of Almond Genotypes to Drought Stress
    Gohari, S.
    Imani, A.
    Talaei, A. R.
    Abdossi, V.
    Asghari, M. R.
    RUSSIAN JOURNAL OF PLANT PHYSIOLOGY, 2023, 70 (06)
  • [5] Physiological Responses of Almond Genotypes to Drought Stress
    S. Gohari
    A. Imani
    A. R. Talaei
    V. Abdossi
    M. R. Asghari
    Russian Journal of Plant Physiology, 2023, 70
  • [6] Physiological Responses of Common Bean Genotypes to Drought Stress
    Mladenov, Petko
    Aziz, Sibel
    Topalova, Elena
    Renaut, Jenny
    Planchon, Sebastien
    Raina, Aamir
    Tomlekova, Nasya
    AGRONOMY-BASEL, 2023, 13 (04):
  • [7] Physiological and molecular responses of two Chinese cabbage genotypes to heat stress
    Song, Q.
    Yang, F.
    Cui, B.
    Li, J.
    Zhang, Y.
    Li, H.
    Qiu, N.
    Wang, F.
    Gao, J.
    BIOLOGIA PLANTARUM, 2019, 63 : 548 - 555
  • [8] Unravelling drought and salinity stress responses in barley genotypes: physiological, biochemical, and molecular insights
    Alsamadany, Hameed
    Abdulbaki, Abdulbaki Shehu
    Alzahrani, Yahya
    FRONTIERS IN PLANT SCIENCE, 2024, 15
  • [9] Physiological and molecular responses of stress sensitive and tolerant banana genotypes to drought heat and their combination
    Chaudhari, R. S.
    Jangale, B. L.
    Sane, A. P.
    Sane, P. V.
    Krishna, B.
    XXXI INTERNATIONAL HORTICULTURAL CONGRESS, IHC2022: INTERNATIONAL SYMPOSIUM ON ADAPTATION OF HORTICULTURAL PLANTS TO ABIOTIC STRESSES, 2023, 1372 : 33 - 41
  • [10] Cellular and physiological responses to drought stress in Aegilops tauschii genotypes
    Falaknaz, Mehran
    Aalami, Ali
    Mehrabi, Aliashraf
    Sabouri, Atefeh
    Kahrizi, Danial
    Karimi, Naser
    CELLULAR AND MOLECULAR BIOLOGY, 2019, 65 (07) : 84 - 94