Author:
Awan Mudassar Fareed,Ali Sajed,Iqbal Muhammad Shahzad,Sharif Muhammad Nauman,Ali Qurban,Nasir Idrees Ahmad
Abstract
AbstractEnhancement of sugar contents and yielding healthful sugar products from sugarcane demand high profile scientific strategies. Previous efforts to foster manipulation in metabolic pathways or triggering sugar production through combating abiotic stresses fail to yield high sugar recovery in Saccharum officinarum L. Novel sucrose isomers trehalulose (TH) and isomaltulose (IM) are naturally manufactured in microbial sources. In pursuance of novel scientific methodology, codon optimized sucrose isomerase gene, Trehalulose synthase gene II(CEMB-SIG2) cloned under dual combined stem specific constitutive promoters in pCAMBIA1301 expression vector integrated with Vacuole targeted signal peptide (VTS) to concentrate gene product into the vacuole. The resultant mRNA expression obtained by Real Time PCR validated extremely increased transgene expression in sugarcane culms than leaf tissues. Overall sugar estimation from transgenic sugarcane lines was executed through refractometer. HPLC based quantifications of Trehalulose (TH) alongside different internodes of transgenic sugarcane confirmed the enhancement of boosted sugar concentrations in mature sugarcane culms. Trehalulose synthase gene II receptive sugarcane lines indicated the unprecedented impressions of duly combined constitutive stem regulated promoters. Transgenic sugarcane lines produce highest sugar recovery percentages, 14.9% as compared to control lines (8.5%). The increased sugar recovery percentage in transgenic sugarcane validated the utmost performance and expression of ThSyGII gene .High Profile Liquid chromatography based sugar contents estimation of Trehalulose (TH) and Isomaltulose (IM) yielded unprecedented improvement in the whole sugar recovery percentage as compared to control lines.
Publisher
Springer Science and Business Media LLC
Reference50 articles.
1. Awan, M. F. et al. Evaluation of genotypic and hormone mediated callus induction and regeneration in sugarcane (Saccharum officinarum L.). Int. J. Bot. Stud. 4, 70–76 (2019).
2. Iqbal, M. et al. Genetic variability of sugarcane genotypes for red rot. Genet. Mol. Res.19, gmr16039978. (2018).
3. Rae, A. L., Perroux, J. M. & Grof, C. P. Sucrose partitioning between vascular bundles and storage parenchyma in the sugarcane stem: a potential role for the ShSUT1 sucrose transporter. Planta 220, 817–825 (2005).
4. Anwar, Z., Gulfraz, M. & Irshad, M. Agro-industrial lignocellulosic biomass a key to unlock the future bio-energy: A brief review. J. Radiat. Res. Appl. Sci. 7, 163–173 (2014).
5. Misra, V. et al. Sugar transporters, sugar-metabolizing enzymes, and their interaction with phytohormones in sugarcane. J. Plant Growth Regul. 1–14 (2022).
Cited by
3 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献