Morpho-physiological, Biochemical, and Transcript Analysis Revealed Differential Behavior of Chickpea Genotypes Towards Salinity.

IF 3.1 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Gurpreet Kaur, Satish Kumar Sanwal, Nirmala Sehrawat, Ashwani Kumar, Anil Kumar Sharma, Anita Mann
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引用次数: 0

Abstract

Till now, limited information was available on salt tolerance chickpea genotypes. Therefore, in comparison to CSG 8962 (check for salinity tolerance), an experiment on nine chickpea genotypes with different background (BG 1103, DCP 92-3, S7, ICCV 10, BG 256, KWR 108, JG 16, K 850, and ICC 4463) was conducted under medium salt stress of ECiw ~ 6 dS m-1 and high salt stress of 9 dS m-1 to evaluate their salt tolerance potential. Different morphological, physiological, biochemical, and molecular traits were studied to characterize these genotypes. It was also noted that growth of all the genotypes was affected by salinity, but more reduction was shown by the genotypes BG 256, DCP 92-3, and ICC 4463. Irrigation water loaded with salts disrupted the water relations as displayed by the reducing values of RWC, water potential, and osmotic potential. Chlorophyll content, when compared with control, reduced in the range of 7.06 to 28.93% at moderate salinity level (ECiw ~ 6 dS m-1) and 23.71 to 55.83% at higher salinity level (ECiw ~ 9 dS m-1). S7, ICCV 10, KWR 108, and CSG 8962 (salt-tolerant check) maintained optimum gas exchange traits, i.e., photosynthetic rate, stomatal conductance, and transpiration rate with increasing salinity and osmoregulatory compounds, imino acid proline, and total soluble sugars were also higher in these genotypes. Na+/K+ ratio at control was 0.084 and it enhanced with increasing salinity and noted mean genotypic values of 0.399 and 0.758 at moderate and higher salinity levels, respectively. Antioxidative defense mechanism was quite active in the genotypes (S7, ICCV 10, KWR 108, and check CSG 8962) because higher values of antioxidative enzymes and low increment in the content of hydrogen peroxide and malondialdehyde were noted in these genotypes. Based on the results, genotypes with salinity contrasting response (KWR 108 as tolerant and ICC 4463 as sensitive) were selected, and gene expression studies were conducted along with CSG 8962 (the check). It was found that KWR 108 showed higher expression of Δ1-pyrroline-5-carboxylate synthetase (P5CS), pyrroline-5-carboxylate reductase (P5CR), Na+/H+ antiporter (NHX1), and sodium transporter HKT1 and downregulation of proline dehydrogenase gene than the genotype CSG 8962 (salt-tolerant check). So, it was concluded that genotypes, i.e., S7, KWR 108, and ICCV 10, maintained higher physiological and biochemical efficiency in terms of lower ψw, ψs, and membrane stability, higher RWC, photosynthetic rate, and osmolyte accumulation as well as antioxidative enzyme activities in comparison to the salt-tolerant check used in the study. Further, these results were validated through gene expression studies which revealed similar results that categorized these genotypes to be salt tolerant.

形态生理、生化和转录分析揭示了鹰嘴豆基因型对盐度的差异行为。
到目前为止,关于鹰嘴豆耐盐基因型的信息有限。因此,与CSG 8962(耐盐性检验)相比,在ECiw ~ 6 dS m-1的中盐胁迫和9 dS m-1的高盐胁迫下,对9个不同背景的鹰嘴豆基因型(BG 1103、DCP 92-3、S7、ICCV 10、BG 256、KWR 108、JG 16、K 850和ICC 4463)进行了耐盐性评价。研究了不同的形态、生理、生化和分子特征来表征这些基因型。所有基因型的生长都受到盐度的影响,但基因型BG 256、DCP 92-3和ICC 4463的下降幅度更大。盐类灌溉水破坏了水分关系,表现为RWC、水势和渗透势的降低值。与对照相比,中等盐度(ECiw ~ 6 dS - m-1)下叶绿素含量降低7.06 ~ 28.93%,高盐度(ECiw ~ 9 dS - m-1)下叶绿素含量降低23.71 ~ 55.83%。S7、ICCV 10、KWR 108和CSG 8962(耐盐性检查)的光合速率、气孔导度和蒸腾速率等气体交换特性随着盐度的增加而保持最佳,这些基因型的渗透调节化合物、亚胺酸脯氨酸和总可溶性糖也较高。对照Na+/K+比值为0.084,随盐度升高而增大,中、高盐度下基因型平均值分别为0.399和0.758。基因型(S7、ICCV 10、KWR 108和check CSG 8962)的抗氧化酶含量较高,过氧化氢和丙二醛含量增幅较小,因此抗氧化防御机制非常活跃。在此基础上,选择了耐盐基因型KWR 108和敏感基因型ICC 4463,并与对照基因CSG 8962进行了基因表达研究。结果发现,与基因型CSG 8962相比,KWR 108的Δ1-pyrroline-5-carboxylate合成酶(P5CS)、吡roline -5-羧酸还原酶(P5CR)、Na+/H+反转运蛋白(NHX1)和钠转运蛋白HKT1的表达较高,脯氨酸脱氢酶基因表达下调。综上所述,S7、KWR 108和ICCV 10基因型在较低的ψw、ψs和膜稳定性、较高的RWC、光合速率、渗透物积累和抗氧化酶活性等方面保持了较高的生理生化效率。此外,这些结果通过基因表达研究得到验证,结果显示这些基因型具有耐盐性。
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来源期刊
Applied Biochemistry and Biotechnology
Applied Biochemistry and Biotechnology 工程技术-生化与分子生物学
CiteScore
5.70
自引率
6.70%
发文量
460
审稿时长
5.3 months
期刊介绍: This journal is devoted to publishing the highest quality innovative papers in the fields of biochemistry and biotechnology. The typical focus of the journal is to report applications of novel scientific and technological breakthroughs, as well as technological subjects that are still in the proof-of-concept stage. Applied Biochemistry and Biotechnology provides a forum for case studies and practical concepts of biotechnology, utilization, including controls, statistical data analysis, problem descriptions unique to a particular application, and bioprocess economic analyses. The journal publishes reviews deemed of interest to readers, as well as book reviews, meeting and symposia notices, and news items relating to biotechnology in both the industrial and academic communities. In addition, Applied Biochemistry and Biotechnology often publishes lists of patents and publications of special interest to readers.
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