| Literature DB >> 33958646 |
Mohammad Shahid1, Mohammad Saghir Khan2, Asad Syed3, Najat Marraiki3, Abdallah M Elgorban3,4.
Abstract
Fungicides among agrochemicals are consistently used in high throughput agricultural practices to protect plants from damaging impact of phytopathogens and hence to optimize crop production. However, the negative impact of fungicides on composition and functions of soil microbiota, plants and via food chain, onEntities:
Year: 2021 PMID: 33958646 PMCID: PMC8102606 DOI: 10.1038/s41598-021-89103-9
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Effect of kitazin on germination percent (a), plant length (b) vigor index (c) root-shoot length ratio (d) percent phytotoxicity (e) and tolerance index (f) of Cicer arietinum seedlings geminated on 0.7% soft agar plates treated with three concentrations of KITZ under in vitro condition. Each bar represents the mean ± S.D (n = 3) of three replicates where each replicate constituted three plants/pot. Mean values followed by different letters are significantly different at p ≤ 0.05 according to Duncan’s multiple range (DMRT) test whereas error bars represent standard deviation (S.D).
Figure 2Effect of KITZ on C. arietinum plants grown with 96 (KITZ 1 ×), 192 (KITZ 2 ×) and 288 µg KITZ kg−1 (KITZ 3 ×) soil (I). Scanning electron microscopic (SEM) images of C. arietinum roots demonstrating distortion/damage induced by KITZ exposure: (A) represents the root tip and root surface of untreated/control. Whereas, (A1) represent the distorted/ruptured root tips and root tip surfaces treated with KITZ (II). The Z-stack images of PI/AO stained C. arietinum roots using CLSM. Images reveal an increase in red/orange fluorescence as concentrations of KITZ increase. Untreated control root showing no red color (B), while roots treated with various doses of KITZ (B1–B3) (III). The Z-stack image of chickpea using CLSM representing the cytotoxicity (Evans blue dye exclusion) assay in root tissues induced by fungicide. Figures show uptake of Evans blue dye by root cells; untreated control root showing no blue color (C), while (C1–C3) represents the roots treated with various doses of KITZ (IV).
Figure 3Plant growth regulating bioactive molecules; indole-3-acetic acid (a), phenolate type siderophore [salicylic acid and 2.3-DHBA) (b), siderophore % unit (c), chrome azurol-S agar (d), ACC deaminase (e) and exopolysaccharide (f) produced by M. ciceri BRM5 in the absence and presence of different doses of KITZ. In this figure, bar diagrams represents the mean values (mean ± S.D) of three independent replicate whereas, error bars depicts the standard deviation (S.D). Different letters on bars denotes that mean values are significantly different (at p ≤ 0.05) according to DMRT.
Figure 4Exopolysaccharide (EPS) producing cultures of M. ciceri on YEMA plate (A), Bar diagrams represents the EPS synthesized by strain BRM5 in the presence of varying concentrations of KITZ (B), quantification of EPS; carbohydrate and protein content (C), morphological analysis of dried powder of EPS under SEM (D), topographical analysis of dried powder of EPS under Atomic force microscope (AFM) (E), EDX analysis of dried powder of EPS showing the presence of various elements (F).
Ammonia, HCN and siderophore production by M. ciceri BRM5 under kitazin stressed condition.
| Treatment | Dose rate (µg mL−1) | NH3 productiona | HCN productionb | Siderophore production (FeCl3 test) |
|---|---|---|---|---|
| Control | 0 | ++ | ND | ++ |
| Kitazin | 600* | + | ND | + |
| 1200** | + | ND | + | |
| 1800*** | + | ND | + |
In this table, *, ** and *** represents the 1 ×, 2 × and 3 × concentrations of kitazin, respectively.
aAmmonia.
bHCN production.
++ and ND indicate ‘positive reaction’ and ‘not detected’, respectively.
Figure 5Inoculation impact of kitazin tolerant M. ciceri BRM5 on C. arietinum plants grown in sandy clay loam soil treated with 96 (1 ×), 192 (2 ×) and 288 (3 ×) µg KITZ kg−1 soil developed in greenhouse conditions (a), germination efficiency and vigor index (b), total plant length (c) total fresh weight (d) and total dry biomass (e). The bar and line diagrams represent mean ± standard deviation (S.D) (n = 3) of three replicates where each replicate constituted three plants/pot. Mean values followed by different letters are significantly different at p ≤ 0.05 according to DMRT test.
Figure 6Bio-inoculation impact of M. ciceri BRM5 on symbiotic features of C. arietinum plants; attachment of nodules with inoculated and treated roots (a), morphology of nodule (b) nodule number (c), nodule dry biomass (d) and LHb content (e) and nutrient uptake in nodules (f) grown in sandy clay loam soil treated with 96 (1 ×), 192 (2 ×) and 288 (3 ×) µg KTZ kg−1 soil and harvested at different intervals. The bar and line diagrams represent the mean ± S.D (n = 3) of three replicates where each replicate constituted three plants/pot. Mean values followed by different letters are significantly different at p ≤ 0.05 according to DMRT test.
Figure 7Bio-inoculation impact of M. ciceri BRM5 on C. arietinum plants on: pod number and yield (a), seed number and seed yield (b), grain protein (c), N content (d) and P content (e) grown in sandy clay loam soil treated with 96, 192 and 288 µg KTZ kg−1 soil. The bar and line diagrams represent the mean ± S.D (n = 3) of three replicates where each replicate constituted three plants/pot. Mean values followed by different letters are significantly different at p ≤ 0.05 according to DMRT test.
Figure 8Bio-inoculation impact of M. ciceri BRM5 on proline content (a) antioxidant enzymes: GPX (b), APX (c) CAT (d) and MDA content (e) of C. arietinum plants grown in sandy clay loam soil treated with 96 (1 ×), 192 (2 ×) and 288 (3 ×) µg KTZ kg−1 soil. The bar and line diagrams represent the mean ± S.D (n = 3) of three replicates where each replicate constituted three plants/pot. Mean values followed by different letters are significantly different at p ≤ 0.05 according to DMRT test.
Figure 9Rhizoplane and rhizosphere colonization in the presence of different concentrations of kitazin at two different seeding stages (80 and 120 DAS).