LEADER 01748oas 2200625 a 450 001 9910689690503321 005 20250602213025.0 035 $a(OCoLC)52640159 035 $a(CONSER) 2003230458 035 $a(CKB)2550000001047500 035 $a(EXLCZ)992550000001047500 100 $a20030718b20042007 ua a 101 0 $aeng 135 $auran||||||||| 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 10$aCo?mo reembolsar sus pre?stamos para estudiantes 210 $a[Washington, D.C.] $cFederal Student Aid 215 $a1 online resource (volumes) 311 08$a2328-2010 606 $aStudent aid$zUnited States$vPeriodicals 606 $aStudent loans$zUnited States$vPeriodicals 606 $aStudent aid$2fast$3(OCoLC)fst01432104 606 $aStudent loans$2fast$3(OCoLC)fst01431545 607 $aUnited States$2fast$1https://id.oclc.org/worldcat/entity/E39PBJtxgQXMWqmjMjjwXRHgrq 608 $aPeriodicals.$2fast 608 $aPeriodicals.$2lcgft 615 0$aStudent aid 615 0$aStudent loans 615 7$aStudent aid. 615 7$aStudent loans. 676 $a371.224 712 02$aUnited States.$bDepartment of Education.$bFederal Student Aid. 801 0$bGPO 801 1$bGPO 801 2$bOCLCQ 801 2$bGPO 801 2$bDLC 801 2$bOCLCQ 801 2$bCUS 801 2$bGPO 801 2$bOCLCF 801 2$bINR 801 2$bOCLCO 801 2$bOCLCQ 801 2$bGILDS 801 2$bOCLCO 801 2$bOCLCA 801 2$bOCLCQ 801 2$bOCLCL 906 $aJOURNAL 912 $a9910689690503321 996 $aCo?mo reembolsar sus pre?stamos para estudiantes$93221026 997 $aUNINA LEADER 03729nam 22004933 450 001 9911019568903321 005 20240805183158.0 010 $a9781394183890$belectronic book 010 $a9781394183913$bonline 010 $z9781394183883$bhardback 024 7 $a10.1002/9781394183913 035 $a(MiAaPQ)EBC31023057 035 $a(Au-PeEL)EBL31023057 035 $a(CKB)29414048900041 035 $a(OCoLC)1415898566 035 $a(EXLCZ)9929414048900041 100 $a20231220d2023 uy 0 101 0 $aeng 135 $aurcnu|||||||| 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 10$aApplications of Genome Engineering in Plants 205 $a1st ed. 210 1$aNewark :$cJohn Wiley & Sons, Incorporated,$d2023. 210 4$dİ2024. 215 $a1 online resource (448 pages) 311 08$aPrint version: Upadhyay, Santosh Kumar Applications of Genome Engineering in Plants Newark : John Wiley & Sons, Incorporated,c2023 9781394183883 330 $a"Recent advances in the genome editing methods especially the CRISPR-Cas system for the precise engineering of the target plant genes/genomes enabled numerous applications of this technology for crop improvement programs and functional genomics studies. In the last few years, several advances have been done in the CRISPR-Cas tool kit including the identification of new Cas proteins having a diverse range of PAM specificity, base editing technologies and prime editing without any stand break, trans-gene free editing, nano-particle mediated delivery of the CRISPR tool kit, development of various ready to use vectors for numerous purposes etc. These advancements make this system more efficient and effective for genome engineering, both in-vivo as well as in-vitro. The modified tool kit has been utilized in several agricultural and horticultural crop species including rice, tomato, banana etc., either for nutritional improvement or for stress tolerance. Further, it has been demonstrated that the CRISPR tool kit can also be utilized in the non-transgenic mode for trans-gene free editing, which has been recently deregulated by various regulatory bodies in several countries including India and USA. These announcements of deregulation have opened a new avenue and strongly boosted the research and developments by utilizing the genome engineering tools for numerous purposes in recent years. Nutritional improvement and stress tolerance have been of prime importance in the last few decades due to increasing nutritional deficiency in the various regions and changes in climatic conditions. The use of genome engineering methods has been efficiently demonstrated for nutritional improvement in various agricultural and horticultural crops including rice, tomato, potato, banana, etc. Development of carotenoids and flavonoids rich cereals, tomato and fruit crops like banana, iron-enriched rice, maize and wheat etc. are a few examples of successful utilization of technology. Further, it is being utilized for abiotic and biotic stress tolerance, disease resistance, virus resistance, and ultimately for the improvement of yield in numerous important crop species"--$cProvided by publisher 606 $aPlant genetic engineering 606 $aCRISPR (Genetics) 606 $aPlant genetics 615 0$aPlant genetic engineering. 615 0$aCRISPR (Genetics) 615 0$aPlant genetics. 676 $a631.5/233 700 $aUpadhyay$b Santosh Kumar$01754499 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 801 2$bUkOxU 912 $a9911019568903321 996 $aApplications of Genome Engineering in Plants$94420134 997 $aUNINA