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Maximum phytate content was in PM + ZnS, while minimum in SHW + ZnF (Fig. 1b) as compared with control.
Press mud combined with Zn soil application (PM + ZnS) has maximum phytate content increase percentage (24%) followed by FYM + ZnS (15.74%) and all other treatments have higher phytate content in grains as compared with control (Fig. 1c).
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Hence, selections should be made for low phytate content.
Open image in new window Fig. 1 Effect of organic manures and Zn fertilization on phytate concentration (a), phytate content (b), and phytate content per ha (c).
Phytate content in grains significantly differed among all the treatments (Fig. 1b).
Recently by mutation breeding, several mutants with low phytate content have been developed and are good resources as low-phytate donors in breeding programs (Liu et al. 2007).
Phytate content in grain (kg ha−1) was significantly different for each treatment.
The use of high Zn donors with low phytate, selection of segregating lines and advanced fixed lines with low phytate, and integrating phytate phenotyping along with grain Zn in the breeding program will help in developing high Zn lines with low phytate content.
Our results stated that phytate concentration in grains and phytate content were significantly (P ≤ 0.05) decreased (Fig. 1a c) when organic manures were applied with Zn soil and foliar method.
Results obtained indicated that chickpea genotypes with higher oil content could have increased nutritional value due to higher glutathione and lower phytate content observed.
At elevated [CO2], a 1.2% increase in phytate content in rice grains was observed compared to that from plants grown in ambient [CO2] (Myers et al. 2014).
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