{"help":"Return the metadata of a dataset (package) and its resources. :param id: the id or name of the dataset :type id: string","success":true,"result":[{"id":"53fa8c6b-c3f8-47c9-a9da-473e511834a0","name":"data-high-resolution-thermal-imagery-reveals-how-interactions-between-crown-structure-and","title":"Data from: High-resolution thermal imagery reveals how interactions between crown structure and genetics shape plant temperature","author":"Peter Olsoy, Andrii Zaiats, Donna Delparte, Spencer Roop, Anna Roser and Trevor Caughlin","author_email":"peterolsoy@boisestate.edu","maintainer":"RCDS Data Repository","maintainer_email":"rcds-web@uidaho.edu","license_title":"https:\/\/creativecommons.org\/licenses\/by\/4.0\/","notes":"\u003Cp\u003EUnderstanding interactions between environmental stress and genetic variation is crucial to predict the adaptive capacity of species to climate change. Leaf temperature is both a driver and a responsive indicator of plant physiological response to thermal stress, and methods to monitor it are needed. Foliar temperatures vary across leaf to canopy scales and are influenced by genetic factors, challenging efforts to map and model this critical variable. Thermal imagery collected using unoccupied aerial systems (UAS) offers an innovative way to measure thermal variation in plants across landscapes at leaf-level resolutions. We used a UAS equipped with a thermal camera to assess temperature variation among genetically distinct populations of big sagebrush (Artemisia tridentata), a keystone plant species that is the focus of intensive restoration efforts throughout much of western North America. We completed flights across a growing season in a sagebrush common garden to map leaf temperature relative to subspecies and cytotype, physiological phenotypes of plants, and summer heat stress. Our objectives were to: (1) determine whether leaf-level stomatal conductance corresponds with changes in crown temperature; (2) quantify genetic (i.e., subspecies and cytotype) contributions to variation in leaf and crown temperatures; and (3) identify how crown structure, solar radiation, and subspecies-cytotype relate to leaf-level temperature. Stomatal conductance was negatively, non-linearly correlated with crown-level temperature derived from UAS. Subspecies identity best explained crown-level temperature with no difference observed between cytotypes. However, structural phenotypes and microclimate best explained leaf-level temperature. These results show how fine-scale thermal mapping can decouple the contribution of genetic, phenotypic, and environmental factors on leaf temperature dynamics. As climate-change-induced heat stress becomes prevalent, thermal UAS represents a promising way to track plant phenotypes that emerge from gene-by-environment interactions.\u003C\/p\u003E\n\u003Cp\u003E\u003Cstrong\u003EData Use\u003C\/strong\u003E\u003Cbr \/\u003E\n\u003Cem\u003ELicense\u003C\/em\u003E\u003Cbr \/\u003E\nCreative Commons Attribution (\u003Ca href=\u0022https:\/\/creativecommons.org\/licenses\/by\/4.0\u0022\u003ECC-BY 4.0\u003C\/a\u003E)\u003Cbr \/\u003E\n\u003Cem\u003ERecommended Citation\u003C\/em\u003E\u003Cbr \/\u003E\nOlsoy, P., Zaiats, A., Delparte, D., Roop, S., Roser, A., \u0026amp; Caughlin, T. T. (2022). Data from: High-resolution thermal imagery reveals how interactions between crown structure and genetics shape plant temperature [Data set]. University of Idaho. \u003Ca href=\u0022https:\/\/doi.org\/10.7923\/B68T-2S83\u0022\u003Ehttps:\/\/doi.org\/10.7923\/B68T-2S83\u003C\/a\u003E\u003C\/p\u003E\n\u003Cp\u003E\u003Cstrong\u003EFunding\u003C\/strong\u003E\u003Cbr \/\u003E\nUS National Science Foundation and Idaho EPSCoR: OIA-1757324\u003Cbr \/\u003E\nUS National Science Foundation and Idaho EPSCoR: OIA-1826801\u003Cbr \/\u003E\nUS National Science Foundation: 2207158\u003Cbr \/\u003E\nUSDA Forest Service Rocky Mountain Research Station: Great Basin Native Plant Project\u003C\/p\u003E\n","url":"https:\/\/data.nkn.uidaho.edu\/dataset\/data-high-resolution-thermal-imagery-reveals-how-interactions-between-crown-structure-and","state":"Active","log_message":"Edited by awchild.","private":true,"revision_timestamp":"Thu, 07\/27\/2023 - 08:36","metadata_created":"Fri, 07\/01\/2022 - 07:40","metadata_modified":"Thu, 07\/27\/2023 - 08:36","creator_user_id":"6cc16f2c-77c2-4d12-ac06-56bbb86b535b","type":"Dataset","resources":[{"id":"22faedb9-c944-4ddf-9ffd-acf0ab5cedc3","revision_id":"","url":"https:\/\/www.northwestknowledge.net\/data\/53fa8c6b-c3f8-47c9-a9da-473e511834a0","description":"","format":"data","state":"Active","revision_timestamp":"Mon, 06\/26\/2023 - 10:44","name":"Data Access | High-resolution thermal imagery reveals how interactions between crown structure and genetics shape plant temperature and physiological response (html)","mimetype":"data","size":"","created":"Tue, 07\/26\/2022 - 13:48","resource_group_id":"bff301ea-b742-427b-954e-e6a326c2ea45","last_modified":"Date changed  Mon, 06\/26\/2023 - 10:44"},{"id":"fbefa5fc-1c39-449f-9bfa-36aa280cdd68","revision_id":"","url":"https:\/\/www.northwestknowledge.net\/data\/53fa8c6b-c3f8-47c9-a9da-473e511834a0\/metadata.xml","description":"","format":"xml","state":"Active","revision_timestamp":"Mon, 06\/26\/2023 - 10:18","name":"Metadata Access | High-resolution thermal imagery reveals how interactions between crown structure and genetics shape plant temperature (xml ISO 19115-2)","mimetype":"xml","size":"","created":"Thu, 07\/28\/2022 - 07:59","resource_group_id":"bff301ea-b742-427b-954e-e6a326c2ea45","last_modified":"Date changed  Mon, 06\/26\/2023 - 10:18"},{"id":"63a1df06-ed7b-4358-91c2-a35b410e917d","revision_id":"","url":"https:\/\/www.northwestknowledge.net\/data\/53fa8c6b-c3f8-47c9-a9da-473e511834a0\/readme.txt","description":"","format":"txt","state":"Active","revision_timestamp":"Mon, 06\/26\/2023 - 10:43","name":"Metadata Access | High-resolution thermal imagery reveals how interactions between crown structure and genetics shape plant temperature (readme.txt)","mimetype":"txt","size":"","created":"Mon, 06\/26\/2023 - 10:43","resource_group_id":"bff301ea-b742-427b-954e-e6a326c2ea45","last_modified":"Date changed  Mon, 06\/26\/2023 - 10:43"},{"id":"a3c8b8c2-a3e3-4e6b-b739-0c6895551ff7","revision_id":"","url":"https:\/\/data.nkn.uidaho.edu\/sites\/default\/files\/b68t-2s83.xml","description":"","format":"xml","state":"Active","revision_timestamp":"Thu, 07\/27\/2023 - 08:36","name":"Metadata Access | High-resolution thermal imagery reveals how interactions between crown structure and genetics shape plant temperature (xml)","mimetype":"text\/xml","size":"9.57 KB","created":"Thu, 07\/27\/2023 - 08:36","resource_group_id":"bff301ea-b742-427b-954e-e6a326c2ea45","last_modified":"Date changed  Thu, 07\/27\/2023 - 08:36"}],"tags":[{"id":"15630280-92f9-415b-967a-1a7440d4fd2f","vocabulary_id":"2","name":"unoccupied aerial systems (UAS)"},{"id":"08f00aa6-dd77-4923-a661-61971a7f4303","vocabulary_id":"2","name":"adaptive capacity"},{"id":"bfd62175-0785-4c6b-ad66-b98ab6501123","vocabulary_id":"2","name":"Artemisia tridentata (sagebrush)"},{"id":"2ddf177c-15c4-4755-a442-4d656453e890","vocabulary_id":"2","name":"common garden"},{"id":"6389d829-8b67-4c8f-aeb6-5e86c1194035","vocabulary_id":"2","name":"common garden experiment"},{"id":"30b86bd5-0c66-4ee9-9be7-711015c91cd3","vocabulary_id":"2","name":"stomatal conductance"},{"id":"835d4365-fe67-4226-aa93-3e0277d4e0a3","vocabulary_id":"2","name":"thermal imagery"},{"id":"c31c967f-ae86-4065-8bd7-349af30d5840","vocabulary_id":"2","name":"leaf temperature"},{"id":"cb317fbe-fb50-4a46-930e-32a2db0a9214","vocabulary_id":"2","name":"sagebrush"},{"id":"e045007c-ecbf-4c81-9899-ff73acc8fd04","vocabulary_id":"2","name":"unoccupied aerial imagery"}],"groups":[{"description":"\u003Cp\u003EBoise State University is a Carnegie-classified doctoral research university and our students have opportunities to work with talented and accomplished faculty on research, even as undergraduates.  Our students go into the workforce better prepared, with expertise outside of their major by taking advantage of opportunities such as certificates in business anthropology, entrepreneurship, or cybersecurity.  \u003C\/p\u003E\n\u003Cp\u003ELearn more at \u003Ca href=\u0022https:\/\/www.boisestate.edu\/\u0022\u003Ehttps:\/\/www.boisestate.edu\/\u003C\/a\u003E\u003C\/p\u003E\n","id":"bff301ea-b742-427b-954e-e6a326c2ea45","image_display_url":"https:\/\/data.nkn.uidaho.edu\/sites\/default\/files\/bsu_logo.jpg","title":"Boise State University","name":"group\/boise-state-university"},{"description":"\u003Cp\u003EIdaho State University, a Carnegie-classified doctoral research and teaching institution founded in 1901, attracts students from around the world to its Idaho campuses. At the main campus in Pocatello, and at locations in Meridian, Idaho Falls and Twin Falls, ISU offers access to high-quality education in more than 250 programs.\u003C\/p\u003E\n\u003Cp\u003ELearn more at \u003Ca href=\u0022https:\/\/www.isu.edu\u0022\u003Ehttps:\/\/www.isu.edu\u003C\/a\u003E\u003C\/p\u003E\n","id":"ea4b940c-347f-440a-ba90-23b6bb01560f","image_display_url":"https:\/\/data.nkn.uidaho.edu\/sites\/default\/files\/ISU-black-transbkgrd.png","title":"Idaho State University","name":"group\/idaho-state-university"},{"description":"\u003Cp\u003EThe primary objective of Idaho EPSCoR is to stimulate research in niche areas that can become fully competitive in the disciplinary and multidisciplinary research programs of the National Science Foundation and other relevant agencies. Idaho EPSCoR provides support for sustainable increases in Research and Development capacity and advances science and engineering capabilities within the state. \u003C\/p\u003E\n\u003Cp\u003EVisit them at \u003Ca href=\u0022https:\/\/www.idahoepscor.org\u0022\u003Ehttps:\/\/www.idahoepscor.org\u003C\/a\u003E\u003C\/p\u003E\n","id":"e696b239-9ecb-412e-b032-03a75b2b9fd6","image_display_url":"https:\/\/data.nkn.uidaho.edu\/sites\/default\/files\/Idaho_epscor_logo_no_white_background.png","title":"Idaho EPSCoR","name":"group\/idaho-epscor"},{"description":"\u003Cp\u003EGEM3 is an NSF EPSCoR research program seeking to understand how genetic diversity and phenotypic plasticity affect species response to environmental change, shaping both population response and adaptive capacity.\u003C\/p\u003E\n\u003Cp\u003EVisit them at: \u003Ca href=\u0022https:\/\/www.idahogem3.org\u0022\u003Ehttps:\/\/www.idahogem3.org\u003C\/a\u003E\u003C\/p\u003E\n","id":"1812a312-11a4-492d-960b-9a78b4abfe0c","image_display_url":"https:\/\/data.nkn.uidaho.edu\/sites\/default\/files\/GEM3_nov5_logo.png","title":"EPSCoR GEM3","name":"group\/epscor-gem3"}]}]}