Afia Gul’s research while affiliated with Quaid-i-Azam University and other places

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Publications (1)


Schematic illustration of nanogreen iron oxide influence on growth and antioxidative response of Oryza sativa
Characterization of Green Synthesized FeO-NPs. UV-Visible absorption spectrum of FeO-NPs by C.FeCl3F.FeSO4(a, b) FTIR spectrum of C.FeCl3 and F.FeSO4 (c, d)
Characterization of Green Synthesized FeO-NPs.XRD of green synthesized FeO-NPs by C.FeCl3, F.FeSO4 (a,b) SEM of green synthesized FeO-NPs C.FeCl3, F.FeSO4 (c,d)
Effect of FeO-NPs on callus, (a, b) Callus induction frequency treated with C.FeCl3, F.FeSO4 based FeO-NPs. (c, d). Callus Regernation Frequency treated with C.FeCl3, F.FeSO4 based FeO-NPs. (e, f) Callus diameter treated with C.FeCl3, F.FeSO4 based FeO-NPs. (g, h). Callus weight treated with C.FeCl3, F.FeSO4 based FeO-NPs. Current data are presented as mean ± S.D. using independent biological replicates in three. At each point mean value with different letters are significantly different at level of 5% by applying Duncan’s multiple range test (DMR) test
Callus of IRRI-6 treated with C.FeCl3 based FeO-NPs a. control (week-1), b. control (week-2), c. control (week-3) d. T1 (week-1), e.T1 (week-2), f. T1 (week-3), g. T2 (week-1), h. T2 (week-2), i. T2 (week-3), j. T3 (week-1), k. T3 (week-2), l. T3 (week-3)

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Green synthesized iron oxide nanoparticles as a potential regulator of callus growth, plant physiology, antioxidative and microbial contamination in Oryza sativa L
  • Article
  • Full-text available

October 2024

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257 Reads

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6 Citations

BMC Plant Biology

Jawad Ullah

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Afia Gul

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In tissue culture, efficient nutrient availability and effective control of callus contamination are crucial for successful plantlet regeneration. This study was aimed to enhance callogenesis, callus regeneration, control callus contamination, and substitute iron (Fe) source with FeO-NPs in Murashige and Skoog (MS) media. Nanogreen iron oxide (FeO-NPs) were synthesized and well characterized with sizes ranging from 2 to 7.5 nm. FeO-NPs as a supplement in MS media at 15 ppm, significantly controlled callus contamination by (80%). Results indicated that FeCl3-based FeO-NPs induced fast callus induction (72%) and regeneration (43%), in contrast FeSO4-based FeO-NPs resulted in increased callus weight (516%), diameter (300%), number of shoots (200%), and roots (114%). Modified media with FeO-NPs as the Fe source induced fast callogenesis and regeneration compared to normal MS media. FeO-NPs, when applied foliar spray, increased Plant fresh biomass by 133% and spike weight by 350%. Plant height increased by 54% and 33%, the number of spikes by 50% and 265%, and Chlorophyll content by 51% and 34% in IRRI-6 and Kissan Basmati, respectively. Additionally, APX (Ascorbate peroxidase), SOD (Superoxide dismutase), POD (peroxidase), and CAT (catalase) increased in IRRI-6 by 27%, 29%, 283%, 62%, while in Kissan Basmati, APX increased by 70%, SOD decreased by 28%, and POD and CAT increased by 89% and 98%, respectively. Finally, FeO-NPs effectively substituted Fe source in MS media, shorten the plant life cycle, and increase chlorophyll content as well as APX, SOD, POD, and CAT activities. This protocol is applicable for tissue culture in other cereal crops as well.

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Citations (1)


... For instance, Nurhasanah et al. (2019) reported that the optimized Fe concentration improved the survival rate and quality of calluses in Indonesian rice varieties, though the optimal concentration differed from our findings with Thai indica varieties. Moreover, supplementation of 15 mg/L iron oxide nanoparticles (FeO-NPs) in the callus induction MS medium significantly increases the callus induction frequency, callus weight, and size of IRRI-6 and Kissan Basmati rice varieties (Ullah et al. 2024). Furthermore, an increase in Fe concentrations in the form of FeO-NPs in the callus induction media markedly improves the rate of callus formation and proliferation in Curcuma longa (Iqbal et al. 2024). ...

Reference:

Iron supplementation promotes growth of indica rice callus by increasing cell size and altering cellular metabolism
Green synthesized iron oxide nanoparticles as a potential regulator of callus growth, plant physiology, antioxidative and microbial contamination in Oryza sativa L

BMC Plant Biology