Cambios
En el instante 23 de junio de 2026, 16:02:47 UTC,
-
Modificado el valor del campo
spatial_coverage
a[{'bbox': '{"type": "Polygon", "coordinates": [[[-18.16, 27.64], [4.32, 27.64], [4.32, 43.79], [-18.16, 43.79], [-18.16, 27.64]]]}', 'centroid': '{"type": "Point", "coordinates": [-6.92, 35.715]}', 'text': 'España', 'uri': 'http://datos.gob.es/recurso/sector-publico/territorio/Pais/España'}]
en Does daily movements can predict the genetic structure of small mammal populations?
| f | 1 | { | f | 1 | { |
| 2 | "access_rights": | 2 | "access_rights": | ||
| 3 | .europa.eu/metadata-codelist/LimitationsOnPublicAccess/noLimitations", | 3 | .europa.eu/metadata-codelist/LimitationsOnPublicAccess/noLimitations", | ||
| 4 | "alternate_identifier": "ISBN: 978-91-637-7327-3", | 4 | "alternate_identifier": "ISBN: 978-91-637-7327-3", | ||
| 5 | "author": "Grilo, C., del Cerro, I., Ramiro, V., Molina-Vacas, G., | 5 | "author": "Grilo, C., del Cerro, I., Ramiro, V., Molina-Vacas, G., | ||
| 6 | Fern\u00e1ndez-Aguilar, X., Porto, F., Ascensao, F., Rom\u00e1n, J., | 6 | Fern\u00e1ndez-Aguilar, X., Porto, F., Ascensao, F., Rom\u00e1n, J., | ||
| 7 | Fonseca, C., Godoy, J.A. y Revilla, E.", | 7 | Fonseca, C., Godoy, J.A. y Revilla, E.", | ||
| 8 | "author_name": "Grilo, C., del Cerro, I., Ramiro, V., Molina-Vacas, | 8 | "author_name": "Grilo, C., del Cerro, I., Ramiro, V., Molina-Vacas, | ||
| 9 | G., Fern\u00e1ndez-Aguilar, X., Porto, F., Ascensao, F., Rom\u00e1n, | 9 | G., Fern\u00e1ndez-Aguilar, X., Porto, F., Ascensao, F., Rom\u00e1n, | ||
| 10 | J., Fonseca, C., Godoy, J.A. y Revilla, E.", | 10 | J., Fonseca, C., Godoy, J.A. y Revilla, E.", | ||
| 11 | "classification_variables": { | 11 | "classification_variables": { | ||
| 12 | "es": "" | 12 | "es": "" | ||
| 13 | }, | 13 | }, | ||
| 14 | "conforms_to": [ | 14 | "conforms_to": [ | ||
| 15 | "https://www.boe.es/eli/es/res/2013/02/19/(4)" | 15 | "https://www.boe.es/eli/es/res/2013/02/19/(4)" | ||
| 16 | ], | 16 | ], | ||
| 17 | "contact": [ | 17 | "contact": [ | ||
| 18 | { | 18 | { | ||
| 19 | "email": "organismo@example.org", | 19 | "email": "organismo@example.org", | ||
| 20 | "name": "Organismo publicador del Cat\u00e1logo", | 20 | "name": "Organismo publicador del Cat\u00e1logo", | ||
| 21 | "role": | 21 | "role": | ||
| 22 | e.ec.europa.eu/metadata-codelist/ResponsiblePartyRole/pointOfContact", | 22 | e.ec.europa.eu/metadata-codelist/ResponsiblePartyRole/pointOfContact", | ||
| 23 | "uri": | 23 | "uri": | ||
| 24 | "http://datos.gob.es/recurso/sector-publico/org/Organismo/EA0000000", | 24 | "http://datos.gob.es/recurso/sector-publico/org/Organismo/EA0000000", | ||
| 25 | "url": "https://organismo.example.org/" | 25 | "url": "https://organismo.example.org/" | ||
| 26 | } | 26 | } | ||
| 27 | ], | 27 | ], | ||
| 28 | "contact_email": "organismo@example.org", | 28 | "contact_email": "organismo@example.org", | ||
| 29 | "contact_name": "Organismo publicador del Cat\u00e1logo", | 29 | "contact_name": "Organismo publicador del Cat\u00e1logo", | ||
| 30 | "contact_role": | 30 | "contact_role": | ||
| 31 | e.ec.europa.eu/metadata-codelist/ResponsiblePartyRole/pointOfContact", | 31 | e.ec.europa.eu/metadata-codelist/ResponsiblePartyRole/pointOfContact", | ||
| 32 | "contact_uri": | 32 | "contact_uri": | ||
| 33 | "http://datos.gob.es/recurso/sector-publico/org/Organismo/EA0000000", | 33 | "http://datos.gob.es/recurso/sector-publico/org/Organismo/EA0000000", | ||
| 34 | "contact_url": "https://organismo.example.org/", | 34 | "contact_url": "https://organismo.example.org/", | ||
| 35 | "created": "2025-05-23", | 35 | "created": "2025-05-23", | ||
| 36 | "creator": [ | 36 | "creator": [ | ||
| 37 | { | 37 | { | ||
| 38 | "name": "Grilo, C., del Cerro, I., Ramiro, V., Molina-Vacas, G., | 38 | "name": "Grilo, C., del Cerro, I., Ramiro, V., Molina-Vacas, G., | ||
| 39 | Fern\u00e1ndez-Aguilar, X., Porto, F., Ascensao, F., Rom\u00e1n, J., | 39 | Fern\u00e1ndez-Aguilar, X., Porto, F., Ascensao, F., Rom\u00e1n, J., | ||
| 40 | Fonseca, C., Godoy, J.A. y Revilla, E." | 40 | Fonseca, C., Godoy, J.A. y Revilla, E." | ||
| 41 | } | 41 | } | ||
| 42 | ], | 42 | ], | ||
| 43 | "creator_user_id": "d24a314a-79ce-48c0-abd9-54cb42706da4", | 43 | "creator_user_id": "d24a314a-79ce-48c0-abd9-54cb42706da4", | ||
| 44 | "dataset_scope": "non_spatial_dataset", | 44 | "dataset_scope": "non_spatial_dataset", | ||
| 45 | "dcat_type": "http://purl.org/dc/dcmitype/Text", | 45 | "dcat_type": "http://purl.org/dc/dcmitype/Text", | ||
| 46 | "encoding": "UTF-8", | 46 | "encoding": "UTF-8", | ||
| 47 | "featured": false, | 47 | "featured": false, | ||
| 48 | "graphic_overview": | 48 | "graphic_overview": | ||
| 49 | less_Areas_in_Europe/links/54df95710cf29666378b912d/largepreview.png", | 49 | less_Areas_in_Europe/links/54df95710cf29666378b912d/largepreview.png", | ||
| 50 | "groups": [], | 50 | "groups": [], | ||
| 51 | "hvd": "non_hvd", | 51 | "hvd": "non_hvd", | ||
| 52 | "id": "9e490b16-38e3-5fce-8a57-5f06a324fab3", | 52 | "id": "9e490b16-38e3-5fce-8a57-5f06a324fab3", | ||
| 53 | "identifier": "9e490b16-38e3-5fce-8a57-5f06a324fab3", | 53 | "identifier": "9e490b16-38e3-5fce-8a57-5f06a324fab3", | ||
| 54 | "inspire_id": "", | 54 | "inspire_id": "", | ||
| 55 | "isopen": true, | 55 | "isopen": true, | ||
| 56 | "language": | 56 | "language": | ||
| 57 | "http://publications.europa.eu/resource/authority/language/SPA", | 57 | "http://publications.europa.eu/resource/authority/language/SPA", | ||
| 58 | "license_id": "cc-by", | 58 | "license_id": "cc-by", | ||
| 59 | "license_title": "Creative Commons Attribution", | 59 | "license_title": "Creative Commons Attribution", | ||
| 60 | "license_url": "http://www.opendefinition.org/licenses/cc-by", | 60 | "license_url": "http://www.opendefinition.org/licenses/cc-by", | ||
| 61 | "lineage_process_steps": [], | 61 | "lineage_process_steps": [], | ||
| 62 | "lineage_source": [ | 62 | "lineage_source": [ | ||
| 63 | "2014 IENE International Conference. Programme and abstracts", | 63 | "2014 IENE International Conference. Programme and abstracts", | ||
| 64 | "pag. 152" | 64 | "pag. 152" | ||
| 65 | ], | 65 | ], | ||
| 66 | "maintainer": "", | 66 | "maintainer": "", | ||
| 67 | "maintainer_name": "", | 67 | "maintainer_name": "", | ||
| 68 | "metadata_created": "2026-06-23T14:51:45.019659", | 68 | "metadata_created": "2026-06-23T14:51:45.019659", | ||
| n | 69 | "metadata_modified": "2026-06-23T14:51:45.019666", | n | 69 | "metadata_modified": "2026-06-23T16:02:47.719492", |
| 70 | "metadata_profile": [ | 70 | "metadata_profile": [ | ||
| 71 | "https://www.w3.org/TR/vocab-dcat-3/" | 71 | "https://www.w3.org/TR/vocab-dcat-3/" | ||
| 72 | ], | 72 | ], | ||
| 73 | "miteco_data_population": { | 73 | "miteco_data_population": { | ||
| 74 | "es": "" | 74 | "es": "" | ||
| 75 | }, | 75 | }, | ||
| 76 | "miteco_data_territory": { | 76 | "miteco_data_territory": { | ||
| 77 | "es": "" | 77 | "es": "" | ||
| 78 | }, | 78 | }, | ||
| 79 | "miteco_dataset_type": | 79 | "miteco_dataset_type": | ||
| 80 | //publications.europa.eu/resource/authority/dataset-type/STATISTICAL", | 80 | //publications.europa.eu/resource/authority/dataset-type/STATISTICAL", | ||
| 81 | "miteco_geo_level": "1", | 81 | "miteco_geo_level": "1", | ||
| 82 | "modified": "2026-06-23", | 82 | "modified": "2026-06-23", | ||
| 83 | "name": "9e490b16-38e3-5fce-8a57-5f06a324fab3", | 83 | "name": "9e490b16-38e3-5fce-8a57-5f06a324fab3", | ||
| 84 | "notes": "Roads can constrain movements of individuals and | 84 | "notes": "Roads can constrain movements of individuals and | ||
| 85 | consequently gene flow across landscape. There is a consensus among | 85 | consequently gene flow across landscape. There is a consensus among | ||
| 86 | experts that some species show road surface and width avoidance | 86 | experts that some species show road surface and width avoidance | ||
| 87 | behavior. However, little attention has been paid on how spatial | 87 | behavior. However, little attention has been paid on how spatial | ||
| 88 | behavior can be translated into mortality risk and population genetic | 88 | behavior can be translated into mortality risk and population genetic | ||
| 89 | structure. With this study we examine the strength of the barrier | 89 | structure. With this study we examine the strength of the barrier | ||
| 90 | effects of different roads types (4-lane highway, 2-lane paved road | 90 | effects of different roads types (4-lane highway, 2-lane paved road | ||
| 91 | and unpaved road) on three rodent species with varying life-history | 91 | and unpaved road) on three rodent species with varying life-history | ||
| 92 | traits: water vole Arvicola sapidus, pine vole Microtus | 92 | traits: water vole Arvicola sapidus, pine vole Microtus | ||
| 93 | duodecimcostatus and algerian mouse Mus spretus. More specifically, we | 93 | duodecimcostatus and algerian mouse Mus spretus. More specifically, we | ||
| 94 | address 1) the influence of traffic on individual movements, 2) the | 94 | address 1) the influence of traffic on individual movements, 2) the | ||
| 95 | effect of road type (width/pavement) on crossing rates, 3) the annual | 95 | effect of road type (width/pavement) on crossing rates, 3) the annual | ||
| 96 | risk of mortality and 4) the genetic structure of populations on both | 96 | risk of mortality and 4) the genetic structure of populations on both | ||
| 97 | sides of the different roads. A total of 79 voles were caught in the | 97 | sides of the different roads. A total of 79 voles were caught in the | ||
| 98 | vicinity of roads and 6481 locations were recorded through radio | 98 | vicinity of roads and 6481 locations were recorded through radio | ||
| 99 | tracking. We used generalized linear mixed models to evaluate the | 99 | tracking. We used generalized linear mixed models to evaluate the | ||
| 100 | effect of traffic on individual movements, compared observed crossing | 100 | effect of traffic on individual movements, compared observed crossing | ||
| 101 | rates with simulations without roads, and used the information of | 101 | rates with simulations without roads, and used the information of | ||
| 102 | number of crossings per individual and the probability of being killed | 102 | number of crossings per individual and the probability of being killed | ||
| 103 | while crossing a road to estimate the annual mortality risk. We also | 103 | while crossing a road to estimate the annual mortality risk. We also | ||
| 104 | obtained 200 tissue samples for pine vole and Algerian mouse and | 104 | obtained 200 tissue samples for pine vole and Algerian mouse and | ||
| 105 | estimate the genetic differentiation (FST) among groups of samples on | 105 | estimate the genetic differentiation (FST) among groups of samples on | ||
| 106 | both sides of roads. As expected, paved roads function as artificial | 106 | both sides of roads. As expected, paved roads function as artificial | ||
| 107 | territorial boundaries for the three species. Traffic intensity had | 107 | territorial boundaries for the three species. Traffic intensity had | ||
| 108 | only negative influence on water vole movements. Crossing rates | 108 | only negative influence on water vole movements. Crossing rates | ||
| 109 | decrease as the road width increase and paved roads have a negative | 109 | decrease as the road width increase and paved roads have a negative | ||
| 110 | effect on individual\u2019s crossings, except for pine vole that had | 110 | effect on individual\u2019s crossings, except for pine vole that had | ||
| 111 | the highest crossing rate, and the 2-lane highway show a neutral | 111 | the highest crossing rate, and the 2-lane highway show a neutral | ||
| 112 | effect. The likelihood of being killed during a crossing event at high | 112 | effect. The likelihood of being killed during a crossing event at high | ||
| 113 | traffic highway segments for pine vole and Algerian mouse at 4-lan | 113 | traffic highway segments for pine vole and Algerian mouse at 4-lan | ||
| 114 | highways were 0.22 and 0.05, respectively. Unexpectedly, pine vole | 114 | highways were 0.22 and 0.05, respectively. Unexpectedly, pine vole | ||
| 115 | populations show genetic structure at 4-lane highways while Algerian | 115 | populations show genetic structure at 4-lane highways while Algerian | ||
| 116 | mouse populations did not show significant genetic structure for all | 116 | mouse populations did not show significant genetic structure for all | ||
| 117 | type of roads. Our study shows that daily movement patterns of small | 117 | type of roads. Our study shows that daily movement patterns of small | ||
| 118 | mammals towards roads cannot be translated on dispersal and gene flow. | 118 | mammals towards roads cannot be translated on dispersal and gene flow. | ||
| 119 | Further information is needed to understand the implications of | 119 | Further information is needed to understand the implications of | ||
| 120 | mortality risk in the viability of pine vole population occurring in | 120 | mortality risk in the viability of pine vole population occurring in | ||
| 121 | the vicinity of heavy traffic roads. We recommend that only | 121 | the vicinity of heavy traffic roads. We recommend that only | ||
| 122 | complementary studies of spatial behavior, population density and | 122 | complementary studies of spatial behavior, population density and | ||
| 123 | genetics may explain the mechanisms underlying the barrier effect of | 123 | genetics may explain the mechanisms underlying the barrier effect of | ||
| 124 | roads on wildlife.", | 124 | roads on wildlife.", | ||
| 125 | "notes_translated": { | 125 | "notes_translated": { | ||
| 126 | "en": "Roads can constrain movements of individuals and | 126 | "en": "Roads can constrain movements of individuals and | ||
| 127 | consequently gene flow across landscape. There is a consensus among | 127 | consequently gene flow across landscape. There is a consensus among | ||
| 128 | experts that some species show road surface and width avoidance | 128 | experts that some species show road surface and width avoidance | ||
| 129 | behavior. However, little attention has been paid on how spatial | 129 | behavior. However, little attention has been paid on how spatial | ||
| 130 | behavior can be translated into mortality risk and population genetic | 130 | behavior can be translated into mortality risk and population genetic | ||
| 131 | structure. With this study we examine the strength of the barrier | 131 | structure. With this study we examine the strength of the barrier | ||
| 132 | effects of different roads types (4-lane highway, 2-lane paved road | 132 | effects of different roads types (4-lane highway, 2-lane paved road | ||
| 133 | and unpaved road) on three rodent species with varying life-history | 133 | and unpaved road) on three rodent species with varying life-history | ||
| 134 | traits: water vole Arvicola sapidus, pine vole Microtus | 134 | traits: water vole Arvicola sapidus, pine vole Microtus | ||
| 135 | duodecimcostatus and algerian mouse Mus spretus. More specifically, we | 135 | duodecimcostatus and algerian mouse Mus spretus. More specifically, we | ||
| 136 | address 1) the influence of traffic on individual movements, 2) the | 136 | address 1) the influence of traffic on individual movements, 2) the | ||
| 137 | effect of road type (width/pavement) on crossing rates, 3) the annual | 137 | effect of road type (width/pavement) on crossing rates, 3) the annual | ||
| 138 | risk of mortality and 4) the genetic structure of populations on both | 138 | risk of mortality and 4) the genetic structure of populations on both | ||
| 139 | sides of the different roads. A total of 79 voles were caught in the | 139 | sides of the different roads. A total of 79 voles were caught in the | ||
| 140 | vicinity of roads and 6481 locations were recorded through radio | 140 | vicinity of roads and 6481 locations were recorded through radio | ||
| 141 | tracking. We used generalized linear mixed models to evaluate the | 141 | tracking. We used generalized linear mixed models to evaluate the | ||
| 142 | effect of traffic on individual movements, compared observed crossing | 142 | effect of traffic on individual movements, compared observed crossing | ||
| 143 | rates with simulations without roads, and used the information of | 143 | rates with simulations without roads, and used the information of | ||
| 144 | number of crossings per individual and the probability of being killed | 144 | number of crossings per individual and the probability of being killed | ||
| 145 | while crossing a road to estimate the annual mortality risk. We also | 145 | while crossing a road to estimate the annual mortality risk. We also | ||
| 146 | obtained\n200 tissue samples for pine vole and Algerian mouse and | 146 | obtained\n200 tissue samples for pine vole and Algerian mouse and | ||
| 147 | estimate the genetic differentiation (FST) among groups of samples on | 147 | estimate the genetic differentiation (FST) among groups of samples on | ||
| 148 | both sides of roads. As expected, paved roads function as artificial | 148 | both sides of roads. As expected, paved roads function as artificial | ||
| 149 | territorial boundaries for the three species. Traffic intensity had | 149 | territorial boundaries for the three species. Traffic intensity had | ||
| 150 | only negative influence on water vole movements. Crossing rates | 150 | only negative influence on water vole movements. Crossing rates | ||
| 151 | decrease as the road width increase and paved roads have a negative | 151 | decrease as the road width increase and paved roads have a negative | ||
| 152 | effect on individual\u2019s crossings, except for pine vole that had | 152 | effect on individual\u2019s crossings, except for pine vole that had | ||
| 153 | the highest crossing rate, and the 2-lane highway show a neutral | 153 | the highest crossing rate, and the 2-lane highway show a neutral | ||
| 154 | effect. The likelihood of being killed during a crossing event at high | 154 | effect. The likelihood of being killed during a crossing event at high | ||
| 155 | traffic highway segments for pine vole and Algerian mouse at 4-lan | 155 | traffic highway segments for pine vole and Algerian mouse at 4-lan | ||
| 156 | highways were 0.22 and 0.05, respectively. Unexpectedly, pine vole | 156 | highways were 0.22 and 0.05, respectively. Unexpectedly, pine vole | ||
| 157 | populations show genetic structure at 4-lane highways while Algerian | 157 | populations show genetic structure at 4-lane highways while Algerian | ||
| 158 | mouse populations did not show significant genetic structure for all | 158 | mouse populations did not show significant genetic structure for all | ||
| 159 | type of roads. Our study shows that daily movement patterns of small | 159 | type of roads. Our study shows that daily movement patterns of small | ||
| 160 | mammals towards roads cannot be translated on dispersal and gene flow. | 160 | mammals towards roads cannot be translated on dispersal and gene flow. | ||
| 161 | Further information is needed to understand the implications of | 161 | Further information is needed to understand the implications of | ||
| 162 | mortality risk in the viability of pine vole population occurring in | 162 | mortality risk in the viability of pine vole population occurring in | ||
| 163 | the vicinity of heavy traffic roads. We recommend that only | 163 | the vicinity of heavy traffic roads. We recommend that only | ||
| 164 | complementary studies of spatial behavior, population density and | 164 | complementary studies of spatial behavior, population density and | ||
| 165 | genetics may explain the mechanisms underlying the barrier effect of | 165 | genetics may explain the mechanisms underlying the barrier effect of | ||
| 166 | roads on wildlife.", | 166 | roads on wildlife.", | ||
| 167 | "es": "Roads can constrain movements of individuals and | 167 | "es": "Roads can constrain movements of individuals and | ||
| 168 | consequently gene flow across landscape. There is a consensus among | 168 | consequently gene flow across landscape. There is a consensus among | ||
| 169 | experts that some species show road surface and width avoidance | 169 | experts that some species show road surface and width avoidance | ||
| 170 | behavior. However, little attention has been paid on how spatial | 170 | behavior. However, little attention has been paid on how spatial | ||
| 171 | behavior can be translated into mortality risk and population genetic | 171 | behavior can be translated into mortality risk and population genetic | ||
| 172 | structure. With this study we examine the strength of the barrier | 172 | structure. With this study we examine the strength of the barrier | ||
| 173 | effects of different roads types (4-lane highway, 2-lane paved road | 173 | effects of different roads types (4-lane highway, 2-lane paved road | ||
| 174 | and unpaved road) on three rodent species with varying life-history | 174 | and unpaved road) on three rodent species with varying life-history | ||
| 175 | traits: water vole Arvicola sapidus, pine vole Microtus | 175 | traits: water vole Arvicola sapidus, pine vole Microtus | ||
| 176 | duodecimcostatus and algerian mouse Mus spretus. More specifically, we | 176 | duodecimcostatus and algerian mouse Mus spretus. More specifically, we | ||
| 177 | address 1) the influence of traffic on individual movements, 2) the | 177 | address 1) the influence of traffic on individual movements, 2) the | ||
| 178 | effect of road type (width/pavement) on crossing rates, 3) the annual | 178 | effect of road type (width/pavement) on crossing rates, 3) the annual | ||
| 179 | risk of mortality and 4) the genetic structure of populations on both | 179 | risk of mortality and 4) the genetic structure of populations on both | ||
| 180 | sides of the different roads. A total of 79 voles were caught in the | 180 | sides of the different roads. A total of 79 voles were caught in the | ||
| 181 | vicinity of roads and 6481 locations were recorded through radio | 181 | vicinity of roads and 6481 locations were recorded through radio | ||
| 182 | tracking. We used generalized linear mixed models to evaluate the | 182 | tracking. We used generalized linear mixed models to evaluate the | ||
| 183 | effect of traffic on individual movements, compared observed crossing | 183 | effect of traffic on individual movements, compared observed crossing | ||
| 184 | rates with simulations without roads, and used the information of | 184 | rates with simulations without roads, and used the information of | ||
| 185 | number of crossings per individual and the probability of being killed | 185 | number of crossings per individual and the probability of being killed | ||
| 186 | while crossing a road to estimate the annual mortality risk. We also | 186 | while crossing a road to estimate the annual mortality risk. We also | ||
| 187 | obtained 200 tissue samples for pine vole and Algerian mouse and | 187 | obtained 200 tissue samples for pine vole and Algerian mouse and | ||
| 188 | estimate the genetic differentiation (FST) among groups of samples on | 188 | estimate the genetic differentiation (FST) among groups of samples on | ||
| 189 | both sides of roads. As expected, paved roads function as artificial | 189 | both sides of roads. As expected, paved roads function as artificial | ||
| 190 | territorial boundaries for the three species. Traffic intensity had | 190 | territorial boundaries for the three species. Traffic intensity had | ||
| 191 | only negative influence on water vole movements. Crossing rates | 191 | only negative influence on water vole movements. Crossing rates | ||
| 192 | decrease as the road width increase and paved roads have a negative | 192 | decrease as the road width increase and paved roads have a negative | ||
| 193 | effect on individual\u2019s crossings, except for pine vole that had | 193 | effect on individual\u2019s crossings, except for pine vole that had | ||
| 194 | the highest crossing rate, and the 2-lane highway show a neutral | 194 | the highest crossing rate, and the 2-lane highway show a neutral | ||
| 195 | effect. The likelihood of being killed during a crossing event at high | 195 | effect. The likelihood of being killed during a crossing event at high | ||
| 196 | traffic highway segments for pine vole and Algerian mouse at 4-lan | 196 | traffic highway segments for pine vole and Algerian mouse at 4-lan | ||
| 197 | highways were 0.22 and 0.05, respectively. Unexpectedly, pine vole | 197 | highways were 0.22 and 0.05, respectively. Unexpectedly, pine vole | ||
| 198 | populations show genetic structure at 4-lane highways while Algerian | 198 | populations show genetic structure at 4-lane highways while Algerian | ||
| 199 | mouse populations did not show significant genetic structure for all | 199 | mouse populations did not show significant genetic structure for all | ||
| 200 | type of roads. Our study shows that daily movement patterns of small | 200 | type of roads. Our study shows that daily movement patterns of small | ||
| 201 | mammals towards roads cannot be translated on dispersal and gene flow. | 201 | mammals towards roads cannot be translated on dispersal and gene flow. | ||
| 202 | Further information is needed to understand the implications of | 202 | Further information is needed to understand the implications of | ||
| 203 | mortality risk in the viability of pine vole population occurring in | 203 | mortality risk in the viability of pine vole population occurring in | ||
| 204 | the vicinity of heavy traffic roads. We recommend that only | 204 | the vicinity of heavy traffic roads. We recommend that only | ||
| 205 | complementary studies of spatial behavior, population density and | 205 | complementary studies of spatial behavior, population density and | ||
| 206 | genetics may explain the mechanisms underlying the barrier effect of | 206 | genetics may explain the mechanisms underlying the barrier effect of | ||
| 207 | roads on wildlife." | 207 | roads on wildlife." | ||
| 208 | }, | 208 | }, | ||
| 209 | "num_resources": 1, | 209 | "num_resources": 1, | ||
| 210 | "num_tags": 2, | 210 | "num_tags": 2, | ||
| 211 | "organization": { | 211 | "organization": { | ||
| 212 | "approval_status": "approved", | 212 | "approval_status": "approved", | ||
| 213 | "created": "2026-06-23T14:36:08.942021", | 213 | "created": "2026-06-23T14:36:08.942021", | ||
| 214 | "description": "", | 214 | "description": "", | ||
| 215 | "id": "bca483f7-26e2-4ed8-99e8-65f5b3c7a26e", | 215 | "id": "bca483f7-26e2-4ed8-99e8-65f5b3c7a26e", | ||
| 216 | "image_url": "", | 216 | "image_url": "", | ||
| 217 | "is_organization": true, | 217 | "is_organization": true, | ||
| 218 | "name": "iepnb", | 218 | "name": "iepnb", | ||
| 219 | "state": "active", | 219 | "state": "active", | ||
| 220 | "title": "", | 220 | "title": "", | ||
| 221 | "type": "organization" | 221 | "type": "organization" | ||
| 222 | }, | 222 | }, | ||
| 223 | "owner_org": "bca483f7-26e2-4ed8-99e8-65f5b3c7a26e", | 223 | "owner_org": "bca483f7-26e2-4ed8-99e8-65f5b3c7a26e", | ||
| 224 | "private": false, | 224 | "private": false, | ||
| 225 | "provenance": { | 225 | "provenance": { | ||
| 226 | "en": "", | 226 | "en": "", | ||
| 227 | "es": "" | 227 | "es": "" | ||
| 228 | }, | 228 | }, | ||
| 229 | "publisher": [ | 229 | "publisher": [ | ||
| 230 | { | 230 | { | ||
| 231 | "email": "buzon-bdatos@miteco.es", | 231 | "email": "buzon-bdatos@miteco.es", | ||
| 232 | "name": "\u00c1rea de Banco de Datos de la Naturaleza. | 232 | "name": "\u00c1rea de Banco de Datos de la Naturaleza. | ||
| 233 | Direcci\u00f3n General Biodiversidad, Bosques y Desertificaci\u00f3n. | 233 | Direcci\u00f3n General Biodiversidad, Bosques y Desertificaci\u00f3n. | ||
| 234 | Ministerio para la Transici\u00f3n Ecol\u00f3gica y el Reto | 234 | Ministerio para la Transici\u00f3n Ecol\u00f3gica y el Reto | ||
| 235 | Demogr\u00e1fico", | 235 | Demogr\u00e1fico", | ||
| 236 | "type": "http://purl.org/adms/publishertype/NationalAuthority", | 236 | "type": "http://purl.org/adms/publishertype/NationalAuthority", | ||
| 237 | "uri": "https://iepnb.es/catalogo/organization/iepnb", | 237 | "uri": "https://iepnb.es/catalogo/organization/iepnb", | ||
| 238 | "url": "https://www.miteco.gob.es/" | 238 | "url": "https://www.miteco.gob.es/" | ||
| 239 | } | 239 | } | ||
| 240 | ], | 240 | ], | ||
| 241 | "publisher_email": "buzon-bdatos@miteco.es", | 241 | "publisher_email": "buzon-bdatos@miteco.es", | ||
| 242 | "publisher_name": "\u00c1rea de Banco de Datos de la Naturaleza. | 242 | "publisher_name": "\u00c1rea de Banco de Datos de la Naturaleza. | ||
| 243 | Direcci\u00f3n General Biodiversidad, Bosques y Desertificaci\u00f3n. | 243 | Direcci\u00f3n General Biodiversidad, Bosques y Desertificaci\u00f3n. | ||
| 244 | Ministerio para la Transici\u00f3n Ecol\u00f3gica y el Reto | 244 | Ministerio para la Transici\u00f3n Ecol\u00f3gica y el Reto | ||
| 245 | Demogr\u00e1fico", | 245 | Demogr\u00e1fico", | ||
| 246 | "publisher_type": | 246 | "publisher_type": | ||
| 247 | "http://purl.org/adms/publishertype/NationalAuthority", | 247 | "http://purl.org/adms/publishertype/NationalAuthority", | ||
| 248 | "publisher_uri": "https://iepnb.es/catalogo/organization/iepnb", | 248 | "publisher_uri": "https://iepnb.es/catalogo/organization/iepnb", | ||
| 249 | "publisher_url": "https://www.miteco.gob.es/", | 249 | "publisher_url": "https://www.miteco.gob.es/", | ||
| 250 | "purpose": { | 250 | "purpose": { | ||
| 251 | "en": "", | 251 | "en": "", | ||
| 252 | "es": "" | 252 | "es": "" | ||
| 253 | }, | 253 | }, | ||
| 254 | "reference": [], | 254 | "reference": [], | ||
| 255 | "relationships_as_object": [], | 255 | "relationships_as_object": [], | ||
| 256 | "relationships_as_subject": [], | 256 | "relationships_as_subject": [], | ||
| 257 | "resources": [ | 257 | "resources": [ | ||
| 258 | { | 258 | { | ||
| 259 | "access_url": | 259 | "access_url": | ||
| 260 | 5fce-8a57-5f06a324fab3/resource/15fc5534-66c4-410f-92c8-742b06f4f549", | 260 | 5fce-8a57-5f06a324fab3/resource/15fc5534-66c4-410f-92c8-742b06f4f549", | ||
| 261 | "availability": | 261 | "availability": | ||
| 262 | ications.europa.eu/resource/authority/planned-availability/AVAILABLE", | 262 | ications.europa.eu/resource/authority/planned-availability/AVAILABLE", | ||
| 263 | "cache_last_updated": null, | 263 | "cache_last_updated": null, | ||
| 264 | "cache_url": null, | 264 | "cache_url": null, | ||
| 265 | "created": "2014-09-19T00:00:00", | 265 | "created": "2014-09-19T00:00:00", | ||
| 266 | "dataset_id": "fe8a6711-65c4-40ac-a5fe-9396ab548a59", | 266 | "dataset_id": "fe8a6711-65c4-40ac-a5fe-9396ab548a59", | ||
| 267 | "datastore_active": false, | 267 | "datastore_active": false, | ||
| 268 | "datastore_contains_all_records_of_source_file": false, | 268 | "datastore_contains_all_records_of_source_file": false, | ||
| 269 | "description": "Art\u00edculo en libro", | 269 | "description": "Art\u00edculo en libro", | ||
| 270 | "download_url": | 270 | "download_url": | ||
| 271 | .iene.info/content/uploads/IENE_2014_Proceedings_updated_version.pdf", | 271 | .iene.info/content/uploads/IENE_2014_Proceedings_updated_version.pdf", | ||
| 272 | "encoding": "UTF-8", | 272 | "encoding": "UTF-8", | ||
| 273 | "format": "HTML", | 273 | "format": "HTML", | ||
| 274 | "hash": "", | 274 | "hash": "", | ||
| 275 | "id": "15fc5534-66c4-410f-92c8-742b06f4f549", | 275 | "id": "15fc5534-66c4-410f-92c8-742b06f4f549", | ||
| 276 | "issued": "", | 276 | "issued": "", | ||
| 277 | "language": | 277 | "language": | ||
| 278 | "http://publications.europa.eu/resource/authority/language/ENG", | 278 | "http://publications.europa.eu/resource/authority/language/ENG", | ||
| 279 | "last_modified": null, | 279 | "last_modified": null, | ||
| 280 | "license": "http://creativecommons.org/licenses/by/4.0/", | 280 | "license": "http://creativecommons.org/licenses/by/4.0/", | ||
| 281 | "license_id": "cc-by", | 281 | "license_id": "cc-by", | ||
| n | 282 | "metadata_modified": "2026-06-23T14:51:45.014932", | n | 282 | "metadata_modified": "2026-06-23T16:02:47.723532", |
| 283 | "mimetype": | 283 | "mimetype": | ||
| 284 | "https://www.iana.org/assignments/media-types/text/html", | 284 | "https://www.iana.org/assignments/media-types/text/html", | ||
| 285 | "mimetype_inner": null, | 285 | "mimetype_inner": null, | ||
| 286 | "modified": "2026-06-23", | 286 | "modified": "2026-06-23", | ||
| 287 | "name": "Acceso al recurso", | 287 | "name": "Acceso al recurso", | ||
| 288 | "package_id": "9e490b16-38e3-5fce-8a57-5f06a324fab3", | 288 | "package_id": "9e490b16-38e3-5fce-8a57-5f06a324fab3", | ||
| 289 | "position": 0, | 289 | "position": 0, | ||
| 290 | "protocol": null, | 290 | "protocol": null, | ||
| 291 | "resource_type": null, | 291 | "resource_type": null, | ||
| 292 | "rights": | 292 | "rights": | ||
| 293 | .europa.eu/metadata-codelist/LimitationsOnPublicAccess/noLimitations", | 293 | .europa.eu/metadata-codelist/LimitationsOnPublicAccess/noLimitations", | ||
| 294 | "size": 0, | 294 | "size": 0, | ||
| 295 | "state": "active", | 295 | "state": "active", | ||
| 296 | "status": "http://purl.org/adms/status/Completed", | 296 | "status": "http://purl.org/adms/status/Completed", | ||
| 297 | "url": | 297 | "url": | ||
| 298 | .iene.info/content/uploads/IENE_2014_Proceedings_updated_version.pdf", | 298 | .iene.info/content/uploads/IENE_2014_Proceedings_updated_version.pdf", | ||
| 299 | "url_type": null | 299 | "url_type": null | ||
| 300 | } | 300 | } | ||
| 301 | ], | 301 | ], | ||
| 302 | "schemingdcat_xls_metadata_template": false, | 302 | "schemingdcat_xls_metadata_template": false, | ||
| 303 | "source": "", | 303 | "source": "", | ||
| 304 | "spatial": "{\"type\": \"Polygon\", \"coordinates\": [[[-18.16, | 304 | "spatial": "{\"type\": \"Polygon\", \"coordinates\": [[[-18.16, | ||
| 305 | 27.64], [4.32, 27.64], [4.32, 43.79], [-18.16, 43.79], [-18.16, | 305 | 27.64], [4.32, 27.64], [4.32, 43.79], [-18.16, 43.79], [-18.16, | ||
| 306 | 27.64]]]}", | 306 | 27.64]]]}", | ||
| 307 | "spatial_coverage": [ | 307 | "spatial_coverage": [ | ||
| 308 | { | 308 | { | ||
| t | 309 | "bbox": { | t | 309 | "bbox": "{\"type\": \"Polygon\", \"coordinates\": [[[-18.16, |
| 310 | "coordinates": [ | 310 | 27.64], [4.32, 27.64], [4.32, 43.79], [-18.16, 43.79], [-18.16, | ||
| 311 | [ | 311 | 27.64]]]}", | ||
| 312 | [ | 312 | "centroid": "{\"type\": \"Point\", \"coordinates\": [-6.92, | ||
| 313 | -18.16, | 313 | 35.715]}", | ||
| 314 | 27.64 | ||||
| 315 | ], | ||||
| 316 | [ | ||||
| 317 | 4.32, | ||||
| 318 | 27.64 | ||||
| 319 | ], | ||||
| 320 | [ | ||||
| 321 | 4.32, | ||||
| 322 | 43.79 | ||||
| 323 | ], | ||||
| 324 | [ | ||||
| 325 | -18.16, | ||||
| 326 | 43.79 | ||||
| 327 | ], | ||||
| 328 | [ | ||||
| 329 | -18.16, | ||||
| 330 | 27.64 | ||||
| 331 | ] | ||||
| 332 | ] | ||||
| 333 | ], | ||||
| 334 | "type": "Polygon" | ||||
| 335 | }, | ||||
| 336 | "centroid": { | ||||
| 337 | "coordinates": [ | ||||
| 338 | -6.92, | ||||
| 339 | 35.715 | ||||
| 340 | ], | ||||
| 341 | "type": "Point" | ||||
| 342 | }, | ||||
| 343 | "text": "Espa\u00f1a", | 314 | "text": "Espa\u00f1a", | ||
| 344 | "uri": | 315 | "uri": | ||
| 345 | ttp://datos.gob.es/recurso/sector-publico/territorio/Pais/Espa\u00f1a" | 316 | ttp://datos.gob.es/recurso/sector-publico/territorio/Pais/Espa\u00f1a" | ||
| 346 | } | 317 | } | ||
| 347 | ], | 318 | ], | ||
| 348 | "spatial_resolution_in_meters": "", | 319 | "spatial_resolution_in_meters": "", | ||
| 349 | "spatial_uri": | 320 | "spatial_uri": | ||
| 350 | tp://datos.gob.es/recurso/sector-publico/territorio/Pais/Espa\u00f1a", | 321 | tp://datos.gob.es/recurso/sector-publico/territorio/Pais/Espa\u00f1a", | ||
| 351 | "state": "active", | 322 | "state": "active", | ||
| 352 | "study_variables": { | 323 | "study_variables": { | ||
| 353 | "es": "" | 324 | "es": "" | ||
| 354 | }, | 325 | }, | ||
| 355 | "tag_uri": [ | 326 | "tag_uri": [ | ||
| 356 | 327 | ||||
| 357 | tp://inspire.ec.europa.eu/metadata-codelist/TopicCategory/environment" | 328 | tp://inspire.ec.europa.eu/metadata-codelist/TopicCategory/environment" | ||
| 358 | ], | 329 | ], | ||
| 359 | "tags": [ | 330 | "tags": [ | ||
| 360 | { | 331 | { | ||
| 361 | "display_name": "fragmentacion", | 332 | "display_name": "fragmentacion", | ||
| 362 | "id": "627f9c0a-a199-4c69-b563-0c8d626e3194", | 333 | "id": "627f9c0a-a199-4c69-b563-0c8d626e3194", | ||
| 363 | "name": "fragmentacion", | 334 | "name": "fragmentacion", | ||
| 364 | "state": "active", | 335 | "state": "active", | ||
| 365 | "vocabulary_id": null | 336 | "vocabulary_id": null | ||
| 366 | }, | 337 | }, | ||
| 367 | { | 338 | { | ||
| 368 | "display_name": "otros-recursos-que-incluyen-informacion-", | 339 | "display_name": "otros-recursos-que-incluyen-informacion-", | ||
| 369 | "id": "2b3610b7-85fe-495c-990a-40e99a432df1", | 340 | "id": "2b3610b7-85fe-495c-990a-40e99a432df1", | ||
| 370 | "name": "otros-recursos-que-incluyen-informacion-", | 341 | "name": "otros-recursos-que-incluyen-informacion-", | ||
| 371 | "state": "active", | 342 | "state": "active", | ||
| 372 | "vocabulary_id": null | 343 | "vocabulary_id": null | ||
| 373 | } | 344 | } | ||
| 374 | ], | 345 | ], | ||
| 375 | "thematic_area": [ | 346 | "thematic_area": [ | ||
| 376 | "especies_silvestres" | 347 | "especies_silvestres" | ||
| 377 | ], | 348 | ], | ||
| 378 | "theme_es": [ | 349 | "theme_es": [ | ||
| 379 | "http://datos.gob.es/kos/sector-publico/sector/medio-ambiente" | 350 | "http://datos.gob.es/kos/sector-publico/sector/medio-ambiente" | ||
| 380 | ], | 351 | ], | ||
| 381 | "title": "Does daily movements can predict the genetic structure of | 352 | "title": "Does daily movements can predict the genetic structure of | ||
| 382 | small mammal populations?", | 353 | small mammal populations?", | ||
| 383 | "title_translated": { | 354 | "title_translated": { | ||
| 384 | "en": "", | 355 | "en": "", | ||
| 385 | "es": "Does daily movements can predict the genetic structure of | 356 | "es": "Does daily movements can predict the genetic structure of | ||
| 386 | small mammal populations?" | 357 | small mammal populations?" | ||
| 387 | }, | 358 | }, | ||
| 388 | "topic": | 359 | "topic": | ||
| 389 | "http://inspire.ec.europa.eu/metadata-codelist/TopicCategory/biota", | 360 | "http://inspire.ec.europa.eu/metadata-codelist/TopicCategory/biota", | ||
| 390 | "type": "dataset", | 361 | "type": "dataset", | ||
| 391 | "url": | 362 | "url": | ||
| 392 | //iepnb.es:443/catalogo/dataset/9e490b16-38e3-5fce-8a57-5f06a324fab3", | 363 | //iepnb.es:443/catalogo/dataset/9e490b16-38e3-5fce-8a57-5f06a324fab3", | ||
| 393 | "version": "", | 364 | "version": "", | ||
| 394 | "version_notes": { | 365 | "version_notes": { | ||
| 395 | "en": "", | 366 | "en": "", | ||
| 396 | "es": "" | 367 | "es": "" | ||
| 397 | } | 368 | } | ||
| 398 | } | 369 | } |