Role of Bioinformatics in Crop Improvement

1
Ujjawal Kumar Singh Kushwaha
Ujjawal Kumar Singh Kushwaha PhD Scholar
2
Indra Deo
Indra Deo
3
Jay Prakash Jaiswal
Jay Prakash Jaiswal
4
Birendra Prasad
Birendra Prasad
5
Narendra Kumar Singh
Narendra Kumar Singh
6
Sanjay Kumar Verma
Sanjay Kumar Verma
7
Anju Arora
Anju Arora
1 Govind Ballabh University of Agriculture and Technology

Send Message

To: Author

GJSFR Volume 17 Issue D1

Article Fingerprint

ReserarchID

ZVK69

Role of Bioinformatics in Crop Improvement Banner
  • English
  • Afrikaans
  • Albanian
  • Amharic
  • Arabic
  • Armenian
  • Azerbaijani
  • Basque
  • Belarusian
  • Bengali
  • Bosnian
  • Bulgarian
  • Catalan
  • Cebuano
  • Chichewa
  • Chinese (Simplified)
  • Chinese (Traditional)
  • Corsican
  • Croatian
  • Czech
  • Danish
  • Dutch
  • Esperanto
  • Estonian
  • Filipino
  • Finnish
  • French
  • Frisian
  • Galician
  • Georgian
  • German
  • Greek
  • Gujarati
  • Haitian Creole
  • Hausa
  • Hawaiian
  • Hebrew
  • Hindi
  • Hmong
  • Hungarian
  • Icelandic
  • Igbo
  • Indonesian
  • Irish
  • Italian
  • Japanese
  • Javanese
  • Kannada
  • Kazakh
  • Khmer
  • Korean
  • Kurdish (Kurmanji)
  • Kyrgyz
  • Lao
  • Latin
  • Latvian
  • Lithuanian
  • Luxembourgish
  • Macedonian
  • Malagasy
  • Malay
  • Malayalam
  • Maltese
  • Maori
  • Marathi
  • Mongolian
  • Myanmar (Burmese)
  • Nepali
  • Norwegian
  • Pashto
  • Persian
  • Polish
  • Portuguese
  • Punjabi
  • Romanian
  • Russian
  • Samoan
  • Scots Gaelic
  • Serbian
  • Sesotho
  • Shona
  • Sindhi
  • Sinhala
  • Slovak
  • Slovenian
  • Somali
  • Spanish
  • Sundanese
  • Swahili
  • Swedish
  • Tajik
  • Tamil
  • Telugu
  • Thai
  • Turkish
  • Ukrainian
  • Urdu
  • Uzbek
  • Vietnamese
  • Welsh
  • Xhosa
  • Yiddish
  • Yoruba
  • Zulu

Bioinformatics plays a significant role in the development of the agricultural sector, agro-based industries, agricultural by-products utilization and better management of the environment. With the increase of sequencing projects, bioinformatics continues to make considerable progress in biology by providing scientists with access to the genomic information. It is believed that we will take on another giant leap in bioinformatics field in next decade, where computational models of systems wide properties could serve as the basis for experimentation and discovery. Agricultural bioinform -atics areas that need focus would be are data curation and need for the use of restricted vocabularies. Being an interface between modern biology and informatics it involves discovery, development and implementation of computational algorithms and software tools that facilitate an understanding of the biological processes with the goal to serve primarily agriculture and healthcare sectors with several spinoffs.

45 Cites in Articles

References

  1. (2000). Analysis of the genome sequence of the flowering plant Arabidopsis thaliana.
  2. Katherine Livingston (1995). <i>Arabidopsis</i> . Elliot M. Meyerowitz and Chris R. Somerville, Eds. Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 1994. xii, 1300 pp., illus. $175. Cold Spring Harbor Monograph 27..
  3. Anonymous (2005). Pseudomonas versus Arabidopsis: models for genomic research into plant disease resistance.
  4. V Asthana (2009). Bioinformatics at Present: Description and disciplines in bioinformatics.
  5. Batley Jacqueline,David Edwards (2016). The application of genomics and bioinformatics to accelerate crop improvement in a changing climate.
  6. Gabriele Berg (2009). Plant–microbe interactions promoting plant growth and health: perspectives for controlled use of microorganisms in agriculture.
  7. A Blum (1988). Plant breeding for stress environments.
  8. John Spieth (2014). Overview of gene structure in C. elegans.
  9. Global Development (2001). http://www. ase .tufts. edu/gdae.
  10. (2004). NetPlantGene V2.0 Web Prediction Server.
  11. John Turner (1999). A Realizable Renewable Energy Future.
  12. W Degrave,C Huynh,D Roos,A Oduola,C More (2002). Bioinformatics for Disease Endemic Countries: Opportunities and Challenges in Science and Technology Development for Health.
  13. D Edwards,J Batley (2004). Plant bioinformatics: from genome to Phenome.
  14. J Emmersen,S Rudd,H Mewes,I Tetko (2007). Separation of sequences from hostpathogen interface using triplet nucleotide frequencies.
  15. D Field,B Tiwari,J Snape (2005). Bioinformatics and data management support for environmental genomics.
  16. Paul Fraser,Eugenia Enfissi,Peter Bramley (2009). Genetic engineering of carotenoid formation in tomato fruit and the potential application of systems and synthetic biology approaches.
  17. M Hermosa,D Turrà,V Fogliano,E Monte,M Lorito (2006). Identification and characterization of potato protease inhibitors able to inhibit pathogenicity and growth of Botrytis cinerea.
  18. B Jayaram,P Dhingra (2010). Bioinformatics for a better tomorrow.
  19. Mie Kasuga,Qiang Liu,Setsuko Miura,Kazuko Yamaguchi-Shinozaki,Kazuo Shinozaki (1999). Improving plant drought, salt, and freezing tolerance by gene transfer of a single stress-inducible transcription factor.
  20. A Kilian,D Kudrna,A Kleinhofs,M Yano,N Kurata,B Steffenson (1995). Rice-barley synteny and its application to saturation mapping of the barley Rpg1 region.
  21. H Koltai,H Volpin (2003). Agricultural genomics: an approach to plant protection.
  22. L Kruglyak (1999). Prospects for whole-genome linkage disequilibrium mapping of common disease genes.
  23. S Kumor (2009). Introduction to bioinformatics, scope and potential of bioinformatics.
  24. Magdalen Lindeberg,John Stavrinides,Jeffrey Chang,James Alfano,Alan Collmer,Jeffery Dangl,Jean Greenberg,John Mansfield,David Guttman (2005). Proposed Guidelines for a Unified Nomenclature and Phylogenetic Analysis of Type III Hop Effector Proteins in the Plant Pathogen <i>Pseudomonas syringae</i>.
  25. Richard Michelmore (2003). The impact zone: genomics and breeding for durable disease resistance.
  26. H Middleton (2000). From gene-specific tests to pharmacogenetics.
  27. K Mochida,K Shinozaki (2010). Genomics and bioinformatics resources for crop improvement.
  28. M Nilges,J Linge (2009). 1822-1922: Pasteur. Institut Pasteur, 27 décembre, 1922.
  29. O Ojo,M Omabe (1016). Incorporating bioinformatics into biological science education in Nigeria: Prospects and challenges.
  30. Jacqueline Paine,Catherine Shipton,Sunandha Chaggar,Rhian Howells,Mike Kennedy,Gareth Vernon,Susan Wright,Edward Hinchliffe,Jessica Adams,Aron Silverstone,Rachel Drake (2005). Improving the nutritional value of Golden Rice through increased pro-vitamin A content.
  31. Sebastian Proost,Michiel Van Bel,Lieven Sterck,Kenny Billiau,Thomas Van Parys,Yves Van De Peer,Klaas Vandepoele (2009). PLAZA: A Comparative Genomics Resource to Study Gene and Genome Evolution in Plants.
  32. V Rao,S Das,V Rao,G Srinubabu (2008). Recent developments in life sciences research: Role of Bioinformatics.
  33. W Roca,C Espinoza,A Panta (2004). Agricultural Applications of Biotechnology and the Potential for Biodiversity Valorization in Latin America and the Caribbean.
  34. P Schenk,L Carvalhais,K Kazan (2012). Unraveling plant-microbe interactions: can multispecies transcriptomics help?.
  35. A Tramontano (2009). Bioinformatics.
  36. D Vassilev,J Leunissen,A Atanassov,A Nenov,G Dimov (2005). Application of Bioinformatics in Plant Breeding.
  37. D Vassilev,J Leunissen,A Atanassov,A Nenov,G Dimov (2006). Application of Bioinformatics in Plant Breeding.
  38. N Luscombe,D Greenbaum,M Gerstein,M Vencato,F Tian,J Alfano,C Buell,S Cartinhour,G Declerck,D Guttman,J Stavrinides,V Joardar,M Lindeberg,P Bronstein,J Mansfield,C Myers,A Collmer,D Schneider (2001). Bioinformatics-Enabled Identification ofthe HrpLRegulon and Type III Secretion System Effector Proteins of Pseudomonas syringaepv. phaseolicola1448A.
  39. Suomin Wang,Changgui Wan,Yanrong Wang,Hua Chen,Zhiyu Zhou,Hua Fu,Ronald Sosebee (2004). The characteristics of Na+, K+ and free proline distribution in several drought-resistant plants of the Alxa Desert, China.
  40. David Willis,Thomas Kinscherf (2004). Global Regulation in Pseudomonas Syringae.
  41. S Unknown Title.
  42. J Xiong (2009). Essential bioinformatics: introduction and biological databases.
  43. Y Xu (2010). Breeding informatics..
  44. P Langridge,D Fleury (2011). Making the most of 'omics' for crop breeding.
  45. J Wales (2009). media wiki upgraded.

Funding

No external funding was declared for this work.

Conflict of Interest

The authors declare no conflict of interest.

Ethical Approval

No ethics committee approval was required for this article type.

Data Availability

Not applicable for this article.

Ujjawal Kumar Singh Kushwaha. 2017. \u201cRole of Bioinformatics in Crop Improvement\u201d. Global Journal of Science Frontier Research - D: Agriculture & Veterinary GJSFR-D Volume 17 (GJSFR Volume 17 Issue D1): .

Download Citation

Issue Cover
GJSFR Volume 17 Issue D1
Pg. 13- 23
Journal Specifications

Crossref Journal DOI 10.17406/GJSFR

Print ISSN 0975-5896

e-ISSN 2249-4626

Keywords
Classification
GJSFR-D Classification: FOR Code: 300299
Version of record

v1.2

Issue date

February 25, 2017

Language

English

Experiance in AR

The methods for personal identification and authentication are no exception.

Read in 3D

The methods for personal identification and authentication are no exception.

Article Matrices
Total Views: 3795
Total Downloads: 1894
2026 Trends
Research Identity (RIN)
Related Research

Published Article

Bioinformatics plays a significant role in the development of the agricultural sector, agro-based industries, agricultural by-products utilization and better management of the environment. With the increase of sequencing projects, bioinformatics continues to make considerable progress in biology by providing scientists with access to the genomic information. It is believed that we will take on another giant leap in bioinformatics field in next decade, where computational models of systems wide properties could serve as the basis for experimentation and discovery. Agricultural bioinform -atics areas that need focus would be are data curation and need for the use of restricted vocabularies. Being an interface between modern biology and informatics it involves discovery, development and implementation of computational algorithms and software tools that facilitate an understanding of the biological processes with the goal to serve primarily agriculture and healthcare sectors with several spinoffs.

Our website is actively being updated, and changes may occur frequently. Please clear your browser cache if needed. For feedback or error reporting, please email [email protected]
×

This Page is Under Development

We are currently updating this article page for a better experience.

Request Access

Please fill out the form below to request access to this research paper. Your request will be reviewed by the editorial or author team.
X

Quote and Order Details

Contact Person

Invoice Address

Notes or Comments

This is the heading

Lorem ipsum dolor sit amet, consectetur adipiscing elit. Ut elit tellus, luctus nec ullamcorper mattis, pulvinar dapibus leo.

High-quality academic research articles on global topics and journals.

Role of Bioinformatics in Crop Improvement

Ujjawal Kumar Singh Kushwaha
Ujjawal Kumar Singh Kushwaha Govind Ballabh University of Agriculture and Technology
Indra Deo
Indra Deo
Jay Prakash Jaiswal
Jay Prakash Jaiswal
Birendra Prasad
Birendra Prasad
Narendra Kumar Singh
Narendra Kumar Singh
Sanjay Kumar Verma
Sanjay Kumar Verma
Anju Arora
Anju Arora

Research Journals