GENETIKA DAN PEMULIAAN TANAMAN: Teori, Metode, dan Aplikasi dalam Pengembangan Varietas Unggul
Keywords:
GENETIKA, PEMULIAAN TANAMANSynopsis
Genetika dan pemuliaan tanaman merupakan disiplin ilmu yang sangat penting dalam pengembangan pertanian modern. Melalui pemahaman mekanisme pewarisan sifat dan keragaman genetik tanaman, pemulia dapat menghasilkan varietas unggul yang memiliki produktivitas tinggi, adaptif terhadap lingkungan, serta tahan terhadap berbagai cekaman biotik dan abiotik.
Buku ini disusun sebagai buku referensi yang membahas konsep genetika tanaman dari dasar hingga aplikasi pemuliaan tanaman modern. Pembahasan meliputi genetika Mendel, genetika kuantitatif, genetika populasi, sumber daya genetik tanaman, hingga metode pemuliaan tanaman konvensional dan modern.
Selain membahas konsep teoritis, buku ini juga menyoroti pentingnya pemanfaatan plasma nutfah lokal, terutama padi lokal sebagai sumber keragaman genetik yang sangat penting bagi program pemuliaan tanaman di Indonesia. Buku ini diharapkan dapat menjadi referensi bagi mahasiswa, dosen, peneliti, serta praktisi pertanian yang tertarik pada bidang genetika dan pemuliaan tanaman. Penulis juga berharap buku ini dapat memberikan kontribusi ilmiah dalam pengembangan ilmu pemuliaan tanaman serta mendukung upaya peningkatan produktivitas dan keberlanjutan pertanian di Indonesia.
Chapters
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KATA PENGANTAR
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DAFTAR ISI
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BAGIAN I DASAR-DASAR GENETIKA
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BAB 1 PENDAHULUAN GENETIKA TANAMAN
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BAB 2 STRUKTUR DAN FUNGSI MATERI GENETIK
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BAB 3 HUKUM PEWARISAN SIFAT MENDEL
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BAB 4 MUTASI DAN VARIASI GENETIK
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BAGIAN II
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BAB 5 GENETIKA KUANTITATIF DALAM PEMULIAAN TANAMAN
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BAB 6 GENETIKA POPULASI TANAMAN
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BAB 7 KERAGAMAN GENETIK DAN PLASMA NUTFAH
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BAGIAN III
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BAB 8 PRINSIP DAN METODE PEMULIAAN TANAMAN
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BAB 9 METODE PEMULIAAN TANAMAN MENYERBUK SENDIRI
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BAB 10 METODE PEMULIAAN TANAMAN MENYERBUK SILANG
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BAB 11 PEMULIAAN TANAMAN HIBRIDA
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BAGIAN IV
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BAB 12 PEMULIAAN TANAMAN DALAM MENGHADAPI CEKAMAN LINGKUNGAN
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BAB 13 PEMULIAAN TANAMAN TAHAN CEKAMAN ABIOTIK
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BAGIAN V
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BAB 14 BIOTEKNOLOGI DAN PEMULIAAN TANAMAN MODERN
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BAB 15 GENOMIKA DAN PEMULIAAN MASA DEPAN
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BAGIAN VI
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BAB 16 STUDI KASUS PEMULIAAN TANAMAN DI INDONESIA
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BAB 17 KARAKTERISASI PADI LOKAL ACEH
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BAB 18 KONSERVASI PLASMA NUTFAH TANAMAN LOKAL
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BAB 19 TANTANGAN KETAHANAN PANGAN GLOBAL
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BAB 20 MASA DEPAN PEMULIAAN TANAMAN
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REFERENSI
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GLOSARIUM
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PROFIL PENULIS
Downloads
References
Acquaah, G. (2012). Principles of Plant Genetics and Breeding. Wiley-Blackwell.
Agrios, G. N. (2005). Plant Pathology. 5th Edition. Elsevier Academic Press.
Alberts, B., Johnson, A., Lewis, J., Morgan, D., Raff, M., Roberts, K., & Walter, P. 2015. Molecular Biology of the Cell. Garland Science.
Allard, R. W. (1999). Principles of Plant Breeding. 2nd Edition. John Wiley & Sons.
Avery, O. T., MacLeod, C. M., & McCarty, M. 1944. Studies on the chemical nature of the substance inducing transformation of pneumococcal types. Journal of Experimental Medicine, 79: 137–158.
Badan Litbang Pertanian. 2019. Inovasi Teknologi Pertanian Mendukung Ketahanan Pangan. Kementerian Pertanian RI.
Badan Penelitian dan Pengembangan Pertanian. (2015). Deskripsi Varietas Unggul Baru Padi. Kementerian Pertanian Republik Indonesia.
BMKG. (2026). Prakiraan cuaca dan kejadian ekstrem Aceh 2026. Badan Meteorologi, Klimatologi, dan Geofisika.
Bortesi, L., & Fischer, R. (2015). The CRISPR/Cas9 system for plant genome editing and beyond. Biotechnology Advances, 33(1), 41–52.
Brush, S. B. (1995). In situ conservation of landraces in centers of crop diversity. Crop Science, 35(2), 346–354.
Brown, T. A. 2016. Gene Cloning and DNA Analysis: An Introduction. Wiley Blackwell.
Chen, K., Wang, Y., Zhang, R., Zhang, H., & Gao, C. (2019). CRISPR/Cas genome editing and precision plant breeding in agriculture. Annual Review of Plant Biology, 70, 667–697.
Collard, B. C. Y., & Mackill, D. J. (2008). Marker-assisted selection: An approach for precision plant breeding in the twenty-first century. Philosophical Transactions of the Royal Society B, 363, 557–572.
Crick, F. 1970. Central dogma of molecular biology. Nature, 227: 561-563.
FAO. (2017). The Future of Food and Agriculture – Trends and Challenges. Food and Agriculture Organization of the United Nations.
Falconer, D. S., & Mackay, T. F. C. (1996). Introduction to Quantitative Genetics. Longman.
Fageria, N. K., & Baligar, V. C. 2005. Enhancing nitrogen use efficiency in crop plants. Advances in Agronomy, 88: 97–185.
Fehr, W. R. (1993). Principles of Cultivar Development. Iowa State University Press.
Fiorani, F., & Schurr, U. (2013). Future scenarios for plant phenotyping. Annual Review of Plant Biology, 64, 267–291.
George, E. F., Hall, M. A., & De Klerk, G. J. (2008). Plant Propagation by Tissue Culture. Springer.
Gelvin, S. B. (2003). Agrobacterium-mediated plant transformation: The biology behind the “gene-jockeying” tool. Microbiology and Molecular Biology Reviews, 67(1), 16–37.
Gepts, P. 2006. Plant genetic resources conservation and utilization: the accomplishments and future of a societal insurance policy. Crop Science, 46: 2278–2292.
Godfray, H. C. J., Beddington, J. R., Crute, I. R., Haddad, L., Lawrence, D., Muir, J. F. & Toulmin, C. (2010). Food security: The challenge of feeding 9 billion people. Science, 327(5967), 812–818.
Griffiths, A. J. F., Wessler, S. R., Carroll, S. B., & Doebley, J. 2015. Introduction to Genetic Analysis. W.H. Freeman.
Hartl, D. L., & Ruvolo, M. 2012. Genetics: Analysis of Genes and Genomes. Jones & Bartlett Learning.
Hershey, A. D., & Chase, M. 1952. Independent functions of viral protein and nucleic acid in growth of bacteriophage. Journal of General Physiology, 36: 39–56.
IPGRI. (1998). Descriptors for Rice (Oryza sativa L.). International Plant Genetic Resources Institute.
IRRI. (2013). Rice Almanac (4th ed.). International Rice Research Institute.
IPCC. (2022). Climate Change 2022: Impacts, Adaptation, and Vulnerability. Intergovernmental Panel on Climate Change.
Jinek, M., Chylinski, K., Fonfara, I., Hauer, M., Doudna, J. A., & Charpentier, E. 2012. A programmable dual-RNA-guided DNA endonuclease in adaptive bacterial immunity. Science, 337: 816–821.
Khush, G. S. (2001). Green revolution: The way forward. Nature Reviews Genetics, 2, 815–822.
Lesk, A. M. (2019). Introduction to Bioinformatics (5th ed.). Oxford University Press.
Li, L., Zhang, Q., & Huang, D. (2020). A review of imaging techniques for plant phenotyping. Sensors, 20(3), 709.
Lobell, D. B., Schlenker, W., & Costa-Roberts, J. (2011). Climate trends and global crop production since 1980. Science, 333(6042), 616–620.
Mendel, G. 1866. Versuche über Pflanzen-Hybriden. Verhandlungen des Naturforschenden Vereines in Brünn.
Meselson, M., & Stahl, F. W. 1958. The replication of DNA in Escherichia coli. Proceedings of the National Academy of Sciences, 44: 671–682.
Mount, D. W. (2004). Bioinformatics: Sequence and Genome Analysis (2nd ed.). Cold Spring Harbor Laboratory Press.
Nazirah, L. (2023). Karakterisasi morfologi, agronomi, dan efisiensi nitrogen beberapa genotipe padi lokal Aceh. Universitas Malikussaleh.
Pierce, B. A. 2017. Genetics: A Conceptual Approach. W.H. Freeman.
Pingali, P. L. 2012. Green revolution: impacts, limits, and the path ahead. Proceedings of the National Academy of Sciences, 109(31): 12302–12308.
Poehlman, J. M., & Sleper, D. A. (2006). Breeding Field Crops. Blackwell Publishing
plant breeding. Philosophical Transactions of the Royal Society B, 363: 557–572.
Rasheed, A., Xia, X., & He, Z. (2017). From markers to genome-based breeding in plants. Theoretical and Applied Genetics, 130, 1971–1983.
Rodríguez, P. (2018). Multi-trait, multi-environment deep learning modeling for genomic-enabled prediction of plant traits. G3: Genes, Genomes, Genetics, 8(12), 3829–3845.
Rosenzweig, C., Elliott, J., Deryng, D., Ruane, A. C., Müller, C., Arneth, A & Jones, J. W. (2014). Assessing agricultural risks of climate change in the 21st century in a global gridded crop model intercomparison. Proceedings of the National Academy of Sciences, 111(9), 3268–3273.
Singh, A., Ganapathysubramanian, B., Singh, A. K., & Sarkar, S. (2016). Machine learning for high-throughput stress phenotyping in plants. Trends in Plant Science, 21(2), 110–124.
Setter, T. L., & Waters, I. (2003). Review of prospects for germplasm improvement for waterlogging tolerance in wheat, barley and oats. Plant and Soil, 253, 1–34.
Scheben, A., & Edwards, D. (2018). Genome editors take on crops. Science, 355(6331), 1122–1123.
Simmonds, N. W., & Smartt, J. 1999. Principles of Crop Improvement. Blackwell Science.
Sleper, D. A., & Poehlman, J. M. (2006). Breeding Field Crops. Blackwell Publishing.
Snustad, D. P., & Simmons, M. J. 2016. Principles of Genetics. John Wiley & Sons.
Sitaresmi, T., Wening, R. H., Rakhmi, A. T., Yunani, N., & Susanto, U. (2013). Pemanfaatan plasma nutfah padi varietas lokal dalam perakitan varietas unggul. Iptek Tanaman Pangan, 8(1), 22–30.
Taiz, L., Zeiger, E., Møller, I. M., & Murphy, A. (2015). Plant Physiology and Development. Sinauer Associates.
Tester, M., & Langridge, P. 2010. Breeding technologies to increase crop production in a changing world. Science, 327: 818–822.
Tilman, D., Cassman, K. G., Matson, P. A., Naylor, R., & Polasky, S. (2002). Agricultural sustainability and intensive production practices. Nature, 418(6898), 671–677.
UN. (2019). World Population Prospects 2019. United Nations Department of Economic and Social Affairs.
Varshney, R. K., Roorkiwal, M., Sinha, P., & Singh, V. K. (2021). Genomics-assisted breeding for sustainable crop improvement. Nature Reviews Genetics, 22, 213–234.
Wahid, A., Gelani, S., Ashraf, M., & Foolad, M. (2007). Heat tolerance in plants: An overview. Environmental and Experimental Botany, 61(3), 199–223.
Watson, J. D., & Crick, F. H. C. 1953. Molecular structure of nucleic acids: a structure for deoxyribose nucleic acid. Nature, 171: 737-738.
Wheeler, T., & von Braun, J. (2013). Climate change impacts on global food security. Science, 341(6145), 508–513.
Xu, G., Fan, X., & Miller, A. J. (2020). Plant nitrogen assimilation and use efficiency. Annual Review of Plant Biology, 71, 339–359.
Yoshida, S. (1981). Fundamentals of Rice Crop Science. International Rice Research Institute
Zhang, H., Zhang, J., Wei, P., Zhang, B., Gou, F., Feng, Z. & Zhu, J. K. (2018). The CRISPR/Cas9 system produces specific and homozygous targeted gene editing in rice in one generation. Plant Biotechnology Journal, 16(3), 703–715.
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