{"id":45,"date":"2013-01-15T09:12:37","date_gmt":"2013-01-15T15:12:37","guid":{"rendered":"http:\/\/agrilife.org\/boutton\/?page_id=45"},"modified":"2026-02-11T15:03:30","modified_gmt":"2026-02-11T21:03:30","slug":"current-research","status":"publish","type":"page","link":"https:\/\/agrilife.org\/boutton\/current-research\/","title":{"rendered":"Current Research"},"content":{"rendered":"<p><a href=\"#soil\">Woody plant encroachment into grasslands: Impacts on landscape-scale 3-dimensional spatial patterns of soil C, N, and P storage.<\/a><br \/>\n<a href=\"#SIBS\">Stable isotope partnership for ecology, environment, and energy research<\/a><br \/>\n<a href=\"#hydro\">Biogeochemical consequences of land cover and land uses in juniper-oak savannas of the southern Great Plains.<\/a><br \/>\n<a href=\"http:\/\/agrilife.org\/boutton\/current-research#identifying\">Identifying sources of N2O production in agroecosystems: A step towards more effective mitigation<\/a><br \/>\n<a name=\"soil\"><\/a><\/p>\n<hr \/>\n<h2><strong><em><a href=\"#soil\"><img loading=\"lazy\" decoding=\"async\" class=\"alignleft wp-image-1387\" src=\"https:\/\/agrilife.org\/boutton\/files\/2023\/11\/NSF_Official_logo_Med_Res_600ppi-150x150.png\" alt=\"NSF Logo\" width=\"104\" height=\"104\" srcset=\"https:\/\/agrilife.org\/boutton\/files\/2023\/11\/NSF_Official_logo_Med_Res_600ppi-150x150.png 150w, https:\/\/agrilife.org\/boutton\/files\/2023\/11\/NSF_Official_logo_Med_Res_600ppi-300x300.png 300w, https:\/\/agrilife.org\/boutton\/files\/2023\/11\/NSF_Official_logo_Med_Res_600ppi-1024x1024.png 1024w, https:\/\/agrilife.org\/boutton\/files\/2023\/11\/NSF_Official_logo_Med_Res_600ppi-768x768.png 768w, https:\/\/agrilife.org\/boutton\/files\/2023\/11\/NSF_Official_logo_Med_Res_600ppi-1536x1536.png 1536w, https:\/\/agrilife.org\/boutton\/files\/2023\/11\/NSF_Official_logo_Med_Res_600ppi-2048x2048.png 2048w\" sizes=\"auto, (max-width: 104px) 100vw, 104px\" \/><\/a>Woody plant encroachment into grasslands:\u00a0 Impacts on landscape-scale 3-dimensional spatial patterns of soil C, N, and P storage and dynamics.<\/em><\/strong><\/h2>\n<p><strong>2016-2018.\u00a0 NSF Ecosystem Studies Program, Dissertation Research, DEB-1600790\u00a0 (T. Boutton and Y. Zhou).<\/strong><\/p>\n<p><strong><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-703 alignright\" src=\"http:\/\/agrilife.org\/boutton\/files\/2013\/01\/100_2690-300x225.jpg\" alt=\"100_2690\" width=\"381\" height=\"286\" srcset=\"https:\/\/agrilife.org\/boutton\/files\/2013\/01\/100_2690-300x225.jpg 300w, https:\/\/agrilife.org\/boutton\/files\/2013\/01\/100_2690-768x576.jpg 768w, https:\/\/agrilife.org\/boutton\/files\/2013\/01\/100_2690-1024x768.jpg 1024w, https:\/\/agrilife.org\/boutton\/files\/2013\/01\/100_2690.jpg 2048w\" sizes=\"auto, (max-width: 381px) 100vw, 381px\" \/><\/strong>Modification of soil nutrient pool sizes following woody plant proliferation has long been of interest to grassland, savanna, and desert ecologists. However, most previous studies examining nutrient dynamics following woody encroachment have been confined to small spatial scales, limited to the uppermost portions of the soil profile, and focused primarily on C and\/or N.\u00a0 This research will quantify soil organic C, total N, and total P throughout the entire soil profile in order to make the first assessment of landscape-scale C:N:P soil stoichiometry following woody plant encroachment into grassland. Specific objectives are: (1) Examine whether vegetation cover change alters the 3-dimensional spatial patterns of soil C, N, and P storage at the landscape scale; and (2) Test whether soil P scales isometrically with respect to C and N, and whether these isometric patterns change with soil depth in N-fixer encroached systems. Nutrient stores will be quantified in spatially-specific soil cores taken to a depth of 1.2 meters in a subtropical savanna landscape in southern Texas where N-fixing woody plants have encroached into grasslands during the past century. \u00a0Results will offer new perceptions on the effects of woody encroachment on interactions between C, N, and P cycles in arid and semi-arid ecosystems across the globe, and enhance our ability to represent these interactions in linked biogeochemistry-climate models.<\/p>\n<p><a name=\"SIBS\"><\/a><\/p>\n<hr \/>\n<h2><img loading=\"lazy\" decoding=\"async\" class=\"alignleft wp-image-749\" src=\"http:\/\/agrilife.org\/boutton\/files\/2013\/01\/Box-Stack-2.jpg\" alt=\"Box_stack\" width=\"126\" height=\"101\" \/><strong><em>Stable isotope partnership for ecology, environment, and energy resea<\/em><em>rch <\/em><\/strong><\/h2>\n<p><strong>2016-2020.\u00a0 Texas A&amp;M University Research Development Fund\u00a0 (E. Grossman, B. Roark, T. Boutton, N. Slowey, J. West, A. Hyodo)<\/strong><\/p>\n<h2><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-744 alignright\" src=\"http:\/\/agrilife.org\/boutton\/files\/2013\/01\/PC051103-300x225.jpg\" alt=\"OLYMPUS DIGITAL CAMERA\" width=\"340\" height=\"255\" srcset=\"https:\/\/agrilife.org\/boutton\/files\/2013\/01\/PC051103-300x225.jpg 300w, https:\/\/agrilife.org\/boutton\/files\/2013\/01\/PC051103-768x576.jpg 768w, https:\/\/agrilife.org\/boutton\/files\/2013\/01\/PC051103-1024x768.jpg 1024w\" sizes=\"auto, (max-width: 340px) 100vw, 340px\" \/><\/h2>\n<p>This project funds the acquisition of two major instruments: a gas chromatograph combustion-isotope ratio mass spectrometer system (GC-C-MS-IRMS), and a clumped isotope mass spectrometer \u00a0(CIMS). These instruments provide unique analytical capabilities at the forefront of ecology and the biogeosciences.\u00a0 These capabilities will be developed jointly through the partnership of the\u00a0Stable Isotopes for Biosphere Science (SIBS) Laboratory in the College of Agriculture and Life Sciences, and the Stable Isotope Geosciences Facility (SIGF) in the College of Geosciences. The GC-C-MS-IRMS instrument enables simultaneous separation and identification of specific biochemical compounds using gas chromatography\/quadrupole mass spectrometry, followed by determination of their isotopic composition (<sup>15<\/sup>N, <sup>13<\/sup>C, <sup>2<\/sup>H) through a combustion or pyrolysis interface to an IRMS.\u00a0 This system will provide cutting-edge methods to track sources and fates of specific biochemical compounds (e.g., alkanes, lipids, amino acids) through the biosphere, geosphere, hydrosphere, and atmosphere, expanding \u00a0interpretations of bulk isotopic measurement. This instrument will be housed in the SIBS Laboratory.\u00a0 The clumped isotope mass spectrometer (CIMS) measures the concentration of mole<img loading=\"lazy\" decoding=\"async\" class=\"alignleft size-medium wp-image-745\" src=\"http:\/\/agrilife.org\/boutton\/files\/2013\/01\/DSCN0280-300x225.jpg\" alt=\"DSCN0280\" width=\"300\" height=\"225\" srcset=\"https:\/\/agrilife.org\/boutton\/files\/2013\/01\/DSCN0280-300x225.jpg 300w, https:\/\/agrilife.org\/boutton\/files\/2013\/01\/DSCN0280-768x576.jpg 768w, https:\/\/agrilife.org\/boutton\/files\/2013\/01\/DSCN0280-1024x768.jpg 1024w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\" \/>cules with two rare isotopes, for example, <sup>13<\/sup>C<sup>18<\/sup>O<sup>16<\/sup>O\/<sup>12<\/sup>C<sup>16<\/sup>O<sub>2<\/sub>. This ratio in carbonate rocks and minerals is temperature dependent, providing a geothermometer for the pore-filling carbonate cements that occlude porosity and permeability in carbonate petroleum reservoirs. Moreover, with burial of carbonate rocks, these clumped isotope signatures reset and provide burial temperatures essential for petroleum exploration.\u00a0 Clumped isotopes are also an emerging methodology in paleoclimate studies in soil science, geology, and oceanography. In addition, this instrumentation would also provide triple oxygen isotope analysis (<sup>18<\/sup>O\/<sup>16<\/sup>O, <sup>17<\/sup>O\/<sup>16<\/sup>O), an emerging tracer for hydrologic and atmospheric research.\u00a0 The CIMS will be housed at SIGF.\u00a0 Together, these two new instruments will catalyze new research ventures in the biogeosciences.<\/p>\n<p><a name=\"hydro\"><\/a><\/p>\n<hr \/>\n<h2 style=\"text-align: left;\"><strong><em><img loading=\"lazy\" decoding=\"async\" class=\"alignleft wp-image-1080\" src=\"https:\/\/agrilife.org\/boutton\/files\/2019\/03\/Sid-Kyle-Long-Term-Savanna-Initiative-300x173.jpg\" alt=\"\" width=\"235\" height=\"136\" srcset=\"https:\/\/agrilife.org\/boutton\/files\/2019\/03\/Sid-Kyle-Long-Term-Savanna-Initiative-300x173.jpg 300w, https:\/\/agrilife.org\/boutton\/files\/2019\/03\/Sid-Kyle-Long-Term-Savanna-Initiative-768x443.jpg 768w, https:\/\/agrilife.org\/boutton\/files\/2019\/03\/Sid-Kyle-Long-Term-Savanna-Initiative.jpg 829w\" sizes=\"auto, (max-width: 235px) 100vw, 235px\" \/>Biogeochemical consequences of land cover and land uses in juniper-oak savannas of the Southern Great Plains.<\/em><\/strong><\/h2>\n<p><strong>2018-2021.\u00a0 Sid Kyle Long-Term Savanna Research and Education Initiative (T. Boutton, R. Mushinski, J. Hsiao, C. Casola). <\/strong><\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\" wp-image-1076 alignright\" src=\"https:\/\/agrilife.org\/boutton\/files\/2019\/03\/Hill_Country_State_Natural_Area-300x199.jpg\" alt=\"\" width=\"404\" height=\"268\" srcset=\"https:\/\/agrilife.org\/boutton\/files\/2019\/03\/Hill_Country_State_Natural_Area-300x199.jpg 300w, https:\/\/agrilife.org\/boutton\/files\/2019\/03\/Hill_Country_State_Natural_Area-768x510.jpg 768w, https:\/\/agrilife.org\/boutton\/files\/2019\/03\/Hill_Country_State_Natural_Area-1024x680.jpg 1024w\" sizes=\"auto, (max-width: 404px) 100vw, 404px\" \/>In grasslands and savannas of the southern Great Plains region, herbivory and fire are likely to interact with woody plant encroachment to alter ecosystem biogeochemistry by influencing above- and belowground primary production, and the structure and function of soil microbial communities.\u00a0 The purpose of this study is to quantify how fire and herbivory treatments interact with vegetation cover to influence: (1) stores of soil organic C, total N, and total P, and (2) the composition and functional abilities of soil microbial communities.\u00a0 Research will be conducted on the western portion of the Edwards Plateau where oak and juniper are encroaching into southern mixed grass prairie.\u00a0 To assess how disturbance treatments interact with vegetation to affect soil organic matter, we will characterize soil C, N, and P pool sizes within each major vegetation type in the herbivory\/fire treatments and control exclosures.\u00a0 Soil sampling will be conducted where primary production data will be collected so that soil C-N-P responses can be explicitly paired with herbaceous and woody productivity rates. \u00a0High-resolution, color infrared aerial photographs will be obtained and georeferenced for each treatment combination to link belowground measurements with aboveground vegetation. Soil and root samples will be analyzed for organic C, total N, and total P.\u00a0 Analyses of \u03b4<sup>13<\/sup>C and \u03b4<sup>15<\/sup>N in soils, roots, and litter will offer insights regarding mechanisms responsible for altering C, N, and P pool sizes, and enable calculations of soil organic matter turnover rates.\u00a0 For each of the treatment and control plots, we will assess the structural and functional attributes of the soil microbial community. \u00a0Aliquots of each soil sample will be used to determine microbial biomass by fumigation-extraction. Microbial community composition will be determined by extracting soil DNA from another soil aliquot, and subjecting it to a phylogenetic survey whereby the 16S ribosomal subunit will be analyzed to characterize bacteria and archaea, and the ITS region to characterize fungi using the Illumina MiSeq platform. \u00a0Results will indicate number and relative abundances of operational taxonomic units present, and will yield functional information based on known characteristics of the species present. Given the vast geographic extent of woody encroachment into grasslands, savannas, and other dryland ecosystems at the global scale, results from this study will improve our ability to incorporate the biogeochemical consequences of land cover\/land use changes into coupled climate\u2013biogeochemistry models to enhance our understanding of the earth system.<\/p>\n<p><a name=\"identifying\"><\/a><\/p>\n<hr \/>\n<h2><strong><em><strong><em><a href=\"http:\/\/agrilife.org\/boutton\/files\/2013\/10\/agrilife-e1384550243275.jpg\"><img loading=\"lazy\" decoding=\"async\" class=\" wp-image-423 alignleft\" src=\"http:\/\/agrilife.org\/boutton\/files\/2013\/10\/agrilife-1024x478.jpg\" alt=\"agrilife\" width=\"136\" height=\"63\" \/><\/a><\/em><\/strong><\/em><\/strong><strong><em><strong><em>Identifying sou<\/em><\/strong><\/em><\/strong><strong><em><strong><em>rces of N<sub>2<\/sub>O production in agroecosystems:\u00a0 A step towards more effective mitigation.<\/em><\/strong><\/em><\/strong><\/h2>\n<p style=\"text-align: left;\"><strong>\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0\u00a0 2013-2016.\u00a0 <\/strong><strong>Texas A&amp;M AgriLife Air Quality Research Program (J. West, T.W. Boutton, F.M. Hons, J. Sparks).<\/strong><\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-672 alignleft\" src=\"http:\/\/agrilife.org\/boutton\/files\/2013\/01\/DSCN0267-300x225.jpg\" alt=\"DSCN0267\" width=\"300\" height=\"225\" srcset=\"https:\/\/agrilife.org\/boutton\/files\/2013\/01\/DSCN0267-300x225.jpg 300w, https:\/\/agrilife.org\/boutton\/files\/2013\/01\/DSCN0267-768x576.jpg 768w, https:\/\/agrilife.org\/boutton\/files\/2013\/01\/DSCN0267-1024x768.jpg 1024w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\" \/>Nitrous oxide (N<sub>2<\/sub>O) is among the most powerful greenhouse gases, with a heat-holding capacity 300x greater than CO<sub>2<\/sub> on a per molecule basis, and an atmospheric residence time &gt;100 yrs. \u00a0Its concentration is now increasing exponentially due to human industrial and agricultural activities. In agricultural lands, such as croplands and rangelands, N<sub>2<\/sub>O is produced by soil microorganisms during the processes of nitrification and denitrification.\u00a0 Because the conditions and management activities that favor nitrification versus denitrification are significantly different and quite complex, it is necessary to be able to quantify and distinguish these two N<sub>2<\/sub>O sources in order to develop more effective strategies to mitigate the production rates associated with each source. Although croplands and rangelands strongly dominate the land cover of Texas, our understanding of both the identity and rates of the soil processes that produce N<sub>2<\/sub>O in these systems remains limited.\u00a0 We will employ a powerful new \u201cisotopomer\u201d methodology that allows the separation of specific soil microbial processes (nitrification vs. denitrification) responsible for N<sub>2<\/sub>O production in two important agricultural systems in Texas. This unique approach relies on the fact that N<sub>2<\/sub>O produced by nitrification has a significantly different intramolecular arrangement of natural N and O isotopes compared to N<sub>2<\/sub>O derived from denitrification. The N<sub>2<\/sub>O molecule has a linear structure of the form N<sub>\u03b2<\/sub>=N<sub>\u03b1<\/sub>=O which also equilibrates with N<sub>\u03b2<\/sub>\u2261N<sub>\u03b1<\/sub>\u2212O.\u00a0 The basis for the proposed research rests on the fact that microbially-mediated reactions involved in denitrification result in <sup>15<\/sup>N enrichment at the central N<sub>\u03b1<\/sub> relative to the terminal N<sub>\u03b2<\/sub>, while reactions during nitrification result in smaller <sup>15<\/sup>N discrimination between the central N<sub>\u03b1<\/sub> and the terminal N<sub>\u03b2<\/sub>. Thus, by determining the intramolecular isotopic composition of N<sub>2<\/sub>O, the relative contributions of nitrification vs. denitrification to the soil N<sub>2<\/sub>O flux can be fingerprinted and quantified. We will integrate a PreCon\/GasBench system with one of our isotope ratio mass spectrometers, develop sample preparation protocols, and then produce initial assessments of N<sub>2<\/sub>O sources in: (a) a long-term (&gt; 30 year) agricultural experiment studying crop rotation, tillage and fertilizer effects on soil processes, and (b) a rangeland ecosystem with well-described changes in N cycling driven by invasion of N-fixing tree legumes.<\/p>\n<p><a name=\"analysis\"><\/a><\/p>\n<hr \/>\n","protected":false},"excerpt":{"rendered":"<p>Woody plant encroachment into grasslands: Impacts on landscape-scale 3-dimensional spatial patterns of soil C, N, and P storage. Stable isotope partnership for ecology, environment, and energy research Biogeochemical consequences of land cover and land uses in juniper-oak savannas of the southern Great Plains. Identifying sources of N2O production in agroecosystems: A step towards more effective mitigation Woody plant encroachment into grasslands:\u00a0 Impacts on landscape-scale 3-dimensional spatial patterns of soil C, N, and P storage and dynamics. 2016-2018.\u00a0 NSF Ecosystem Studies Program, Dissertation Research, DEB-1600790\u00a0 (T. Boutton and Y&#8230;. <span class=\"read-more\"><a href=\"https:\/\/agrilife.org\/boutton\/current-research\/\">Read More &rarr;<\/a><\/span><\/p>\n","protected":false},"author":810,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"onecolumn-page.php","meta":{"_acf_changed":false,"_monsterinsights_skip_tracking":false,"_monsterinsights_sitenote_active":false,"_monsterinsights_sitenote_note":"","_monsterinsights_sitenote_category":0,"footnotes":""},"class_list":["post-45","page","type-page","status-publish","hentry"],"acf":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.8 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>Current Research - Boutton Biogeochemistry Lab<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/agrilife.org\/boutton\/current-research\/\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Current Research - Boutton Biogeochemistry Lab\" \/>\n<meta property=\"og:description\" content=\"Woody plant encroachment into grasslands: Impacts on landscape-scale 3-dimensional spatial patterns of soil C, N, and P storage. Stable isotope partnership for ecology, environment, and energy research Biogeochemical consequences of land cover and land uses in juniper-oak savannas of the southern Great Plains. Identifying sources of N2O production in agroecosystems: A step towards more effective mitigation Woody plant encroachment into grasslands:\u00a0 Impacts on landscape-scale 3-dimensional spatial patterns of soil C, N, and P storage and dynamics. 2016-2018.\u00a0 NSF Ecosystem Studies Program, Dissertation Research, DEB-1600790\u00a0 (T. Boutton and Y.... 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Stable isotope partnership for ecology, environment, and energy research Biogeochemical consequences of land cover and land uses in juniper-oak savannas of the southern Great Plains. Identifying sources of N2O production in agroecosystems: A step towards more effective mitigation Woody plant encroachment into grasslands:\u00a0 Impacts on landscape-scale 3-dimensional spatial patterns of soil C, N, and P storage and dynamics. 2016-2018.\u00a0 NSF Ecosystem Studies Program, Dissertation Research, DEB-1600790\u00a0 (T. Boutton and Y.... 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