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1

Forensic sampling and DNA databases in criminal investigations. Govt. Printer, 2004.

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2

Xiao, Lihua. Development and standardization of a cryptosporidium genotyping tool for water samples. AWWA Research Foundation/American Water Works Association/IWA Pub., 2006.

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3

Pertemuan Ilmiah Pemantapan Tehnik Pengumpulan Data Guna Pelaksanaan Penelitian dan Pemantapan Tehnik Tata Cara Sampling Dalam Pelaksanaan Penelitian (1998 Jakarta, Indonesia). Laporan Pertemuan Ilmiah Pemantapan Tehnik Pengumpulan Data Guna Pelaksanaan Penelitian dan Pemantapan Tehnik Tata Cara Sampling Dalam Pelaksanaan Penelitian. Pusat Penelitian dan Pengembangan, Kejaksaan Agung RI, 1998.

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4

Taberlet, Pierre, Aurélie Bonin, Lucie Zinger, and Eric Coissac. Sampling. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198767220.003.0004.

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Sampling is crucial to any ecological study. Chapter 4 “Sampling” aims at proving keys for a successful sampling campaign when using DNA metabarcoding. It first describes the origin, fate, and transport of environmental DNA in various environments, from freshwater streams to soils, and discusses the implication of the DNA cycle in the environment for answering ecological questions. The chapter presents guidelines to appropriately sample the target DNA population and maximize the representativeness of the retrieved ecological signal. Different sampling strategies at the level of the sampling ar
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5

Taberlet, Pierre, Aurélie Bonin, Lucie Zinger, and Eric Coissac. Environmental DNA. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198767220.001.0001.

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Environmental DNA (eDNA), i.e. DNA released in the environment by any living form, represents a formidable opportunity to gather high-throughput and standard information on the distribution or feeding habits of species. It has therefore great potential for applications in ecology and biodiversity management. However, this research field is fast-moving, involves different areas of expertise and currently lacks standard approaches, which calls for an up-to-date and comprehensive synthesis. Environmental DNA for biodiversity research and monitoring covers current methods based on eDNA, with a par
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6

Taberlet, Pierre, Aurélie Bonin, Lucie Zinger, and Eric Coissac. Environmental DNA for functional diversity. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198767220.003.0010.

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Chapter 10 “Environmental DNA for functional diversity” discusses the potential of environmental DNA to assess functional diversity. It first focuses on DNA metabarcoding and discusses the extent to which this approach can be used and/or optimized to retrieve meaningful information on the functions of the target community. This knowledge usually involves coarsely defined functional groups (e.g., woody, leguminous, graminoid plants; shredders or decomposer soil organisms; pathogenicity or decomposition role of certain microorganisms). Chapter 10 then introduces metagenomics and metatranscriptom
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7

Taberlet, Pierre, Aurélie Bonin, Lucie Zinger, and Eric Coissac. Introduction to environmental DNA (eDNA). Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198767220.003.0001.

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Chapter “Introduction to environmental DNA (eDNA)” defines the central concepts of this book. Environmental DNA (eDNA) corresponds to a mixture of genomic DNA from many different organisms found in an environmental sample such as water, soil, or feces. DNA metabarcoding can be defined as the simultaneous DNA-based identification of many taxa found in the same eDNA extract. It is usually based on the analysis of a metabarcode (i.e., a short and taxonomically informative DNA region). Metagenomics refers to the assembly and functional analysis of the different genomes found in an environmental sa
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8

Slack, Jonathan. 6. Genes in evolution. Oxford University Press, 2014. http://dx.doi.org/10.1093/actrade/9780199676507.003.0006.

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‘Genes in evolution’ illustrates that a great deal of change in the primary sequence of DNA was not adaptive at all. It was not natural selection, but ‘neutral evolution’, consisting of an accumulation of mutations of no selective consequence that spread through the population by the effects of random sampling of variants from one generation to the next. In natural selection, generally what is good for the organism is good for the propagation of the gene variants it carries. But sometimes, as for sex and altruism, maximizing inheritance of gene variants that bring them about seems at first sig
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9

Singh, Ajaib, Linda Xiao, and Kerri Alderisio. Development and Standardization of a Cryptosporidium Genotyping Tool for Water Samples (Subject Area: High-Quality Water). American Water Works Research Foundation, 2006.

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10

Mathiesen, Amber, and Kali Roy. Foundations of Perinatal Genetic Counseling. Oxford University Press, 2018. http://dx.doi.org/10.1093/med/9780190681098.001.0001.

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Foundations of Perinatal Genetic Counseling provides an overview of the core concepts needed to practice perinatal genetic counseling, including the basics of pregnancy, the genetic counseling appointment, family and pregnancy history, prenatal screening, prenatal diagnosis, common indications, carrier screening, management of high-risk pregnancy, assisted reproductive technology, preimplantation genetic screening and diagnosis, and common situations arising in perinatal genetic counseling. It discusses general obstetrical information as it pertains to perinatal genetic counseling, including t
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11

H, Suffet I., Malaiyandi Murugan 1923-, American Chemical Society. Division of Environmental Chemistry., and American Chemical Society. Division of Analytical Chemistry., eds. Organic pollutants in water: Sampling, analysis, and toxicity testing. American Chemical Society, 1987.

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12

I. H. (Mel) Suffet (Editor) and Murugan Malaiyandi (Editor), eds. Organic Pollutants in Water: Sampling, Analysis, and Toxicity Testing (Advances in Chemistry Series). An American Chemical Society Publication, 1998.

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13

PT, Galuh Cempaka, ed. Upaya pengelolaan lingkungan (UKL) dan upaya pemantauan lingkungan (UPL) kegiatan bulk sampling intan di Kabupaten Banjar, Propinsi Kalimantan Selatan. Galuh Cempaka, 1999.

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14

Pilot study metoda sampling penelitian rata-rata produksi dan pendapatan petani cengkeh sebagai akibat program peningkatan produksi perkebunan di Propinsi Lampung. Fakultas Pertanian, Universitas Sriwijaya kerjasama [dengan] Direktorat Bina Program, Direktorat Jenderal Perkebunan, Departemen Pertanian, 1989.

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15

Pertanian, Universitas Andalas Fakultas, ed. Final report pilot studi metode sampling survai rata-rata produktivitas dan rata-rata konsumsi perkapita untuk komoditi kelapa di Propinsi Sumatera Barat. Kerjasama Direktorat Jenderal Perkebunan, Jakarta dengan Fakultas Pertanian, Universitas Andalas, Padang, 1989.

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