Extreme weather impacts on butterfly populations in Southern Texas, USA

Journal of Insect Conservation - Trang 1-14 - 2023
Rebecca R. Zerlin1, Juan C. Elissetche1, Tyler A. Campbell2, Richard J. Patrock3, David B. Wester1, Sandra Rideout-Hanzak1
1Department of Rangeland and Wildlife Sciences, Caesar Kleberg Wildlife Research Institute, Texas A&M University-Kingsville, Kingsville, USA
2East Foundation, San Antonio, USA
3Department of Biological and Health Sciences, Texas A&M University-Kingsville, Kingsville, USA

Tóm tắt

Climate change is altering biodiversity of ecosystems worldwide by causing shifts in species’ home ranges, potential extinctions of species, and Extreme Climatic Events (ECEs), such as hurricanes and extreme temperatures. The purpose of this study was to examine effects of two extreme weather events on butterfly populations in the Gulf Prairies and Marshes ecoregion in Willacy and Kenedy Counties, TX, USA. These weather events occurred during an ongoing study of effects of prescribed burning during summer or winter on butterfly populations. We tested effects of Category 1 Hurricane Hanna by comparing butterfly abundance in the month prior to and following the hurricane (July and August 2020). We tested effects of Winter Storm Uri by comparing butterfly abundance in the three months following the storm (March through May 2021) with abundance during the same period in the previous year (March through May 2020). We measured no effect of the Category 1 hurricane on butterfly populations overall and across all prescribed fire regimes. There was a significant reduction in butterfly abundance following the 2021 winter storm, and effects depended on prescribed fire regime. Our findings indicate that extremely cold temperatures in subtropical regions will likely have greater negative effects on butterfly populations than low-magnitude hurricanes. With extreme climate events (ECEs) predicted to increase in the future, measures should be taken to provide protection and refugia for butterflies, particularly from prolonged, uncharacteristically low temperatures. Protection includes maintaining undisturbed areas with accumulated plant matter, in preparation for these unpredictable events.

Tài liệu tham khảo

Ahmed MZ, Araujo-Jnr EV, Welch JJ (2015) Wolbachia in butterflies and moths: geographic structure in infection frequency. Front Zool 12:16. https://doi.org/10.1186/s12983-015-0107-z Anderson JT, Song BH (2020) Plant adaptation to climate change—where are we? J Syst Evol 58:533–545 Bailey LD, van de Pol M (2016) Tackling extremes: challenges for ecological and evolutionary research on extreme climatic events. J Anim Ecol 85(1):85–96. https://doi.org/10.1111/1365-2656.12451 Bale JS, Hayward S (2010) Insect overwintering in a changing climate. J. Exp. Biol. 213:980–94. https://doi.org/10.1242/jeb.037911 BAMONA (2022) Butterflies of United States. Butterflies and moths of North America. https://www.butterfliesandmoths.org/checklists?species_type=0&tid=45152 Accessed 10 Jan 2022 Banner JL, Jackson CS, Yang Z, Hayhoe K, Woodhouse C, Gulden L, Jacobs K, North G, Leung R, Washington W, Jiang X, Castell R (2010) Climate change impacts on Texas water: a white paper assessment of the past, present and future and recommendations for action. Tex Water J 1:1–19 Bell JE, Brown CL, Conlon K, Herring S, Kunkel K, Lawrimore J, Luber G, Schreck C, Smith A, Uejio C (2018) Changes in extreme events and the potential impacts on human health. J Air Waste Manage Assoc 68:265–287. https://doi.org/10.1080/10962247.2017.1401017 Britton CM, Rideout-Hanzak S, Brown SD (2010) Effects of burns conducted in summer and winter on vegetation of Matagorda Island, Texas. Southwestern Nat 55:193–202. https://doi.org/10.1894/JB-07.1 Calvert WH, Zuchowski W, Brower LP (1983) The effect of rain, snow and freezing temperatures on overwintering monarch butterflies in Mexico. Biotropica 15:42–47 Checa MF, Levy E, Rodriguez J, Willmott K (2019) Rainfall as a significant contributing factor to butterfly seasonality along a climatic gradient in the neotropics. BioRxiv. https://doi.org/10.1101/630947 Comay O, Yehuda OB, Schwartz-Tzachor R, Benyamini I, Ktalav I, Pe’er G (2021) Environmental controls on butterfly occurrence and species richness in Israel: the importance of temperature over rainfall. Ecol Evol 11:12035–12050. https://doi.org/10.1002/ece3.7969 Crossley MS, Meier AR, Baldwin EM, Berry L, Crenshaw L, Hartman G, Lagos-Kutz D, Nichols D, Patel K, Varriano S, Snyder W, Moran M (2020) No net insect abundance and diversity declines across US long term ecological research sites. Nat Ecol Evol 4:1368–1376. https://doi.org/10.1038/s41559-020-1269-4 De Palma A, Dennis RLH, Brereton T, Leather SR, Oliver TH (2016) Large reorganizations in butterfly communities during an extreme weather event. Ecography 40:577–585. https://doi.org/10.1111/ecog.02228 Eigenbrode SD, Adhikari S, Kistner-Thomas E, Neven L (2022) Introduction to the collection: climate change, insect pests, and beneficial arthropods in production systems. J Econ Entomol. https://doi.org/10.1093/jee/toac107 Forister ML, McCall AC, Sanders NJ, Fordyce JA, Thorne JH, O’Brien J, Waetjen DP, Shapiro AM (2010) Compounded effects of climate change and habitat alteration shift patterns of butterfly diversity. Proc Natl Acad Sci USA 107:2088–2092. https://doi.org/10.1073/pnas.0909686107 Forister ML, Halsch CA, Nice CC, Fordyce JA, Dilts TE, Oliver JC, Prudic KL, Shapiro AM, Wilson JK, Glassberg J (2021) Fewer butterflies seen by community scientists across the warming and drying landscapes of the American West. Science 371:1042–1045. https://doi.org/10.1126/science.abe5585. (PMID: 33674492) Francis JA, Vavrus SJ (2012) Evidence linking arctic amplification to extreme weather in mid-latitudes. Geophys Res Lett 39:1–6. https://doi.org/10.1029/2012GL051000 Gould FW, Hoffman GO, Rechenthin CA (1960) Vegetational areas of Texas. Texas Agricultural Extension Service, Texas Agricultural Experiment Station. https://hdl.handle.net/1969.1/162440 Accessed Oct 5 2021 Hallac D, Kline J, Sadle J, Bass S, Ziegler T, Snow S (2010) Preliminary effects of the January 2010 cold weather on flora and fauna in Everglades National Park. Biological Resources Branch, South Florida Natural Resources Center, Everglades and Dry Tortugas National Parks, Homestead, FL Hallman CA, Sorg M, Jongejans E, Siepel H, Hofland N, Schwan H, Stenmans W, Muller A, Sumser H, Horren T, Goulson D, de Kroon H (2017) More than 75 percent decline over 27 years in total flying insect biomass in protected areas. PLoS ONE 12:e0185809. https://doi.org/10.1371/journal.pone.0185809 Hallmann CA, Zeegers T, van Klink R, Vermeulen R, van Wielink P, Spijkers H, van Deijk J, van Steenis W, Jongehans E (2019) Declining abundance of beetles, moths and caddisflies in the Netherlands. Insect Conserv Divers 13:127–139. https://doi.org/10.1111/icad.12377 Halsch CA, Shapiro AM, Fordyce JA, Nice CC, Thorne JH, Waetjen DP, Forister ML (2021) Insects and recent climate change. Proc Natl Acad Sci USA. https://doi.org/10.1073/pnas.2002543117 Haynes VL, Avila-Sanchez JS, Rideout-Hanzak S, Wester DB, Ortega-S JA (2018) Effects of prescribed burning on gulf cordgrass, Spartina spartinae (Trin.) Merr. ex Hitchs. MOJ Ecol Environ Sci 3:110–115 HilleRisLambers J, Harsch MA, Ettinger AK, Ford KR, Theobald EJ (2013) How will biotic interactions influence climate change-induced range shifts? Ann NY Acad Sci 1297:112–125. https://doi.org/10.1111/nyas.12182 IPBES (2019) Global assessment report on biodiversity and ecosystem services of the intergovernmental science-policy platform on biodiversity and ecosystem services. https://doi.org/10.5281/zenodo.3831673 IPCC (2021) Climate change 2021: the physical science basis. Working group I contribution to the sixth assessment report of the intergovernmental panel on climate change. Cambridge University Press, Cambridge, UK IPCC (2023) Climate change 2023: synthesis report of the IPCC sixth assessment report (AR6). https://www.ipcc.ch/report/sixth-assessment-report-cycle/ Accessed Aug 1 2023 IUCN JM (2016) Explaining ocean warming: causes, scale, effects and consequences. In: Laffoley D, Baxter JM (eds) Full report. Gland, Switzerland IUCN (2017) Ocean warming. issues brief. https://www.iucn.org/resources/issues-briefs/ocean-warming Accessed July 27 2021 Kral-O’Brien KC, Karasch BM, Hovick TJ, Moranz RA, Harmon JP (2020) Morphological traits determine detectability bias in North American grassland butterflies. Ecosphere 11:e03304. https://doi.org/10.1002/ecs2.3304 Kral-OBrien KC, Harmon JP, Antonsen AK (2021) Snapshot observations demonstrate within- and across-year weather related changes in butterfly behavior. Clim Change Ecol. https://doi.org/10.1016/j.ecochg.2021.100004 LeDee OE, Handler SD, Hoving CL, Swanston CW, Zuckerberg B (2020) Preparing wildlife for climate change: how far have we come? J Wildlife Manage 85:7–16. https://doi.org/10.1002/jwmg.21969 Lindenmayer DB, Lavery T, Scheele BC (2022) Why we need to invest in large-scale, long-term monitoring programs in landscape ecology and conservation biology. Curr Landsc Ecol Rep 7:137–146. https://doi.org/10.1007/s40823-022-00079-2 Long OM, Warren R, Price J, Brereton TM, Botham MS, Franco AMA (2017) Sensitivity of UK butterflies to local climatic extremes: which life stages are most at risk? J Anim Ecol 86:108–116. https://doi.org/10.1111/1365-2656.12594 Morss RE, Wilhelmi OV, Meehl GA, Dilling L (2011) Improving societal outcomes of extreme weather in a changing climate: an integrated perspective. Annu Rev Environ Resour 36:1–25. https://doi.org/10.1146/annurev-environ-060809-100145 Munyuli MBT (2013) Drivers of species richness and abundance of butterflies in coffee–banana agroforests in Uganda. Int J Biodivers Sci Ecosyst Serv Manage 9:298–310. https://doi.org/10.1080/21513732.2012.709539 Myhre G, Alterskjær K, Stjern CW, Hodnebrog O, Marelle L, Samset BH, Sillmann J, Schaller N, Fischer E, Schulz M, Stohl A (2019) Frequency of extreme precipitation increases extensively with event rareness under global warming. Sci Rep. https://doi.org/10.1038/s41598-019-52277-4 NOAA (2020) Hurricane Hanna (2020). National Oceanic and Atmospheric Administration, National Weather Service. https://www.weather.gov/crp/Hurricane_Hanna Accessed November 3 2020 NWS (2020) Hurricane Hanna July 24–26, 2020. National Weather Service, Corpus Christi, TX. https://storymaps.arcgis.com/stories/d4f4b9a5ab8a4c2bbfac506ef4ad0791 Accessed November 3 2020 Pollard E (1977) A method for assessing changes in the abundance of butterflies. Biol Conserv 12:115–134. https://doi.org/10.1016/0006-3207(77)90065-9 PRISM Time Series Data (2022) Dataset: AN81m. Location: Lat 26.5498, Lon -97.4571. http://www.prism.oregonstate.edu/documents/PRISM_datasets.pdf Accessed May 5 2022 Quinn M, Klym M (2009) An introduction to butterfly watching. Texas Parks and Wildlife. https://tpwd.texas.gov/publications/pwdpubs/media/pwd_bk_w7000_0752.pdf Accessed June 12 2021 Raven PH, Wagner DL (2021) Agricultural intensification and climate change are rapidly decreasing insect biodiversity. Proc Natl Acad Sci USA. https://doi.org/10.1073/pnas.2002548117 Ries L, Neupane N, Baum KA, Zipkin EF (2018) Flying through hurricane central: impacts of hurricanes on migrants with a focus on monarch butterflies. Anim Migration 5:94–103. https://doi.org/10.1515/ami-2018-0010 Roland J, Matter SF (2013) Variability in winter climate and winter extremes reduces population growth of an alpine butterfly. Ecology 94:190–199. https://doi.org/10.1890/12-0611.1 Ruthven DC III, Gallagher JF, Synatzke DR (2002) Response of herbaceous vegetation to winter burns in the western South Texas plains: an observation. Texas J Agric Nat Resour 15:60–70 Salvato MH, Salvato HL (2007) The influence of hurricane and tropical storm activity on resident butterflies in the lower Florida Keys. J Lepidop Soc 61:154–164 Smith MD (2011) An ecological perspective on extreme climatic events: a synthetic definition and framework to guide future research. J Ecol 99:656–663. https://doi.org/10.1111/j.1365-2745.2011.01798.x Stein B (2002) States of the union: ranking America’s biodiversity. NatureServe, Arlington, VA, USA Syaripuddin K, Sing KW, Wilson JJ (2015) Comparison of butterflies, bats and beetles as bioindicators based on four key criteria and DNA barcodes. Trop Conserv Sci 8:138–149. https://doi.org/10.1177/194008291500800112 Tabari H (2020) Climate change impact on flood and extreme precipitation increases with water availability. Sci Rep. https://doi.org/10.1038/s41598-020-70816-2 Trenberth K, Cheng L, Peter J, Zhang Y, Fasullo J (2018) Hurricane Harvey links to ocean heat content and climate change adaptation. Earth’s Future 6:730–744. https://doi.org/10.1029/2018EF000825 Turnock WJ, Fields PG (2005) Winter climates and coldhardiness in terrestrial insects. Eur J Entomol 102:561–576. https://doi.org/10.14411/eje.2005.081 U.S. Climate Data (2022) Climate port Mansfield—Texas. https://www.usclimatedata.com/climate/port-mansfield/texas/united-states/ustx1077 Accessed October 11 2022 Ummenhofer CC, Meehl GA (2017) Extreme weather and climate events with ecological relevance: a review. Philos Trans R Soc B 372:20160135. https://doi.org/10.1098/rstb.2016.0135 USGCRP (2014) Climate change impacts in the United States. The third national climate assessment. In: Melillo JM, Richmond TC, Yohe GW (Eds) US Global Change Research Program. Washington, DC. https://doi.org/10.7930/J0Z31WJ2 Wagner DL, Grames EM, Forister ML, Berenbaum MR, Stopak D (2021) Insect decline in the anthropocene: death by a thousand cuts. Proc Natl Acad Sci USA. https://doi.org/10.1073/pnas.2023989118 Warren SM, Maes D, van Swaay CAM, Goffart P, Van Dyck H, Bourn NAD, Wynhoff I, Hoare D, Ellis S (2021) The decline of butterflies in Europe: problems, significance, and possible solutions. Proc Natl Acad Sci USA. https://doi.org/10.1073/pnas.2002551117 Wepprich T, Adrion JR, Ries L, Wiedmann J, Haddad NM (2019) Butterfly abundance declines over 20 years of systematic monitoring in Ohio, USA. PLoS ONE. https://doi.org/10.1371/journal.pone.0216270 Zerlin RR (2022) Effects of prescribed burning on butterfly populations in coastal South Texas. Unpubl. Thesis, Texas A&M University-Kingsville Zhao G, Gao H, Cuo L (2016) Effects of urbanization and climate change on peak flows over the San Antonio River Basin, Texas. J Hydrometeorol 17:2371–2389. https://doi.org/10.1175/JHM-D-15-0216.1