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    Efficacy and Safety of HAPC in Barrett's Esophagus – A Multicenter Italian Prospective Study by Davide Massimi, Roberta Maselli, Silvia Pecere, Cristiano Spada, Gianluca Andrisani, Francesco Maria Di Matteo, Antonella La Terra, Franco Coppola, Antonio Capogreco, Roberto De Sire, Ludovico Alfarone, Maddalena Menini, Marco Spadaccini, Cesare Hassan, Alessandro Repici

    “…We prospectively included patients undergoing H-APC ablation at 4 Italian Hospitals from September 2022 to March 2024. Patients with BE C3M5 maximum extent, low- or high-grade dysplasia (LGD, HGD) or residual BE after endoscopic resection (ER) of visible lesions were included. …”
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  4. 424

    Acute high-intensity interval exercise is superior to moderate-intensity continuous exercise in enhancing endothelial function and its associated biomarkers in sedentary young indi... by Ziqing Liu, Jinglin Huang, Min Hu, Xuyan Cui, Lu Leng, Kangle Wang, Jiarui Wu, Shan He, Weiji Deng, Peilun Li, Yilin Chen, Dongdong Gao, Haijie Yu, Junhao Huang

    Published 2025-01-01
    “…Methods: Fifteen subjects (10M / 5F; 22 ± 2 years; BMI: 23.07 ± 4.12 kg/m2) participated in a crossover trial including three experimental conditions: HIIE, MICE, and a control session of rest (CON) in random order separated by a 7-day washout period. …”
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    Effect of dietary protein level and lamb breed on meat physicochemical traits, fatty acid profile and nutritional indices by H. Hajji, S. Smeti, I. Mekki, N. Atti

    Published 2025-01-01
    “…The atherogenic index (AI) and cholesterolemic index (<span class="inline-formula"><math xmlns="http://www.w3.org/1998/Math/MathML" id="M5" display="inline" overflow="scroll" dspmath="mathml"><mrow><mi>h</mi><mo>/</mo><mi>H</mi></mrow></math><span><svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="22pt" height="14pt" class="svg-formula" dspmath="mathimg" md5hash="125cf76f8183f007c0fdec873a2feb4f"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="aab-68-57-2025-ie00002.svg" width="22pt" height="14pt" src="aab-68-57-2025-ie00002.png"/></svg:svg></span></span>) of the meat were in the recommended ranges, being in favour of BB and NT breeds with, respectively, lower and higher values than QFO. …”
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    A sub-fossil coral Sr∕Ca record documents northward shifts of the Tropical Convergence Zone in the eastern Indian Ocean by M. Pfeiffer, H. Takayanagi, H. Takayanagi, L. Reuning, T. K. Watanabe, T. K. Watanabe, S. Ito, D. Garbe-Schönberg, T. Watanabe, T. Watanabe, T. Watanabe, C.-C. Wu, C.-C. Shen, C.-C. Shen, J. Zinke, G.-J. A. Brummer, S. Y. Cahyarini

    Published 2025-01-01
    “…U<span class="inline-formula"><math xmlns="http://www.w3.org/1998/Math/MathML" id="M4" display="inline" overflow="scroll" dspmath="mathml"><mo>/</mo></math><span><svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="8pt" height="14pt" class="svg-formula" dspmath="mathimg" md5hash="57ee8123d9c9aefcf23d9c7f6463c158"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="cp-21-211-2025-ie00005.svg" width="8pt" height="14pt" src="cp-21-211-2025-ie00005.png"/></svg:svg></span></span>Th dating shows that the <span class="inline-formula"><math xmlns="http://www.w3.org/1998/Math/MathML" id="M5" display="inline" overflow="scroll" dspmath="mathml"><mrow><mrow class="chem"><mi mathvariant="normal">Sr</mi></mrow><mo>/</mo><mrow class="chem"><mi mathvariant="normal">Ca</mi></mrow></mrow></math><span><svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="33pt" height="14pt" class="svg-formula" dspmath="mathimg" md5hash="90dc7a8a55bd37b8673bdad01c3cf421"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="cp-21-211-2025-ie00006.svg" width="33pt" height="14pt" src="cp-21-211-2025-ie00006.png"/></svg:svg></span></span>-based SST record extends from 1869–1918 and from 1824–1862 with a relative age uncertainty of <span class="inline-formula">±3</span> years (<span class="inline-formula">2<i>σ</i></span>). …”
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    Measurement Report: Changes in ammonia emissions since the 18th century in south-eastern Europe inferred from an Elbrus (Caucasus, Russia) ice-core record by M. Legrand, M. Legrand, M. Vorobyev, D. Bokuchava, S. Kutuzov, S. Kutuzov, A. Plach, A. Stohl, A. Khairedinova, V. Mikhalenko, M. Vinogradova, S. Eckhardt, S. Preunkert

    Published 2025-01-01
    “…The NH<span class="inline-formula"><math xmlns="http://www.w3.org/1998/Math/MathML" id="M5" display="inline" overflow="scroll" dspmath="mathml"><mrow><msubsup><mi/><mn mathvariant="normal">4</mn><mo>+</mo></msubsup></mrow></math><span><svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="8pt" height="15pt" class="svg-formula" dspmath="mathimg" md5hash="aa378b71f34a6c23384fc0eb7c6e7621"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="acp-25-1385-2025-ie00002.svg" width="8pt" height="15pt" src="acp-25-1385-2025-ie00002.png"/></svg:svg></span></span> ice-core record indicates a 3.5-fold increase in concentrations between 1750 and 1990 CE. …”
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  15. 435

    Small emission sources in aggregate disproportionately account for a large majority of total methane emissions from the US oil and gas sector by J. P. Williams, J. P. Williams, M. Omara, M. Omara, A. Himmelberger, D. Zavala-Araiza, K. MacKay, K. MacKay, J. Benmergui, J. Benmergui, J. Benmergui, M. Sargent, S. C. Wofsy, S. P. Hamburg, S. P. Hamburg, R. Gautam, R. Gautam

    Published 2025-02-01
    “…We find that of the total 14.6 (12.7–16.8) <span class="inline-formula">Tg yr<sup>−1</sup></span> oil–gas methane emissions in the CONUS for the year 2021, 70 % (95 % confidence intervals: 61 %–81 %) originate from facilities emitting <span class="inline-formula"><math xmlns="http://www.w3.org/1998/Math/MathML" id="M2" display="inline" overflow="scroll" dspmath="mathml"><mrow><mo>&lt;</mo><mn mathvariant="normal">100</mn><mspace width="0.125em" linebreak="nobreak"/><mrow class="unit"><mi mathvariant="normal">kg</mi><mspace linebreak="nobreak" width="0.125em"/><msup><mi mathvariant="normal">h</mi><mrow><mo>-</mo><mn mathvariant="normal">1</mn></mrow></msup></mrow></mrow></math><span><svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="61pt" height="15pt" class="svg-formula" dspmath="mathimg" md5hash="19fcbf30880ac03389a7071bd56f55a2"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="acp-25-1513-2025-ie00001.svg" width="61pt" height="15pt" src="acp-25-1513-2025-ie00001.png"/></svg:svg></span></span> and 30 % (26 %–34 %) and <span class="inline-formula">∼80 %</span> (68 %–90 %) originate from facilities emitting <span class="inline-formula">&lt;10</span> and <span class="inline-formula"><math xmlns="http://www.w3.org/1998/Math/MathML" id="M5" display="inline" overflow="scroll" dspmath="mathml"><mrow><mo>&lt;</mo><mn mathvariant="normal">200</mn><mspace linebreak="nobreak" width="0.125em"/><mrow class="unit"><mi mathvariant="normal">kg</mi><mspace linebreak="nobreak" width="0.125em"/><msup><mi mathvariant="normal">h</mi><mrow><mo>-</mo><mn mathvariant="normal">1</mn></mrow></msup></mrow></mrow></math><span><svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="61pt" height="15pt" class="svg-formula" dspmath="mathimg" md5hash="08f24a8bb4b8ec74d183291f532cf7c9"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="acp-25-1513-2025-ie00002.svg" width="61pt" height="15pt" src="acp-25-1513-2025-ie00002.png"/></svg:svg></span></span>, respectively. …”
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    Impact of mineral dust on the global nitrate aerosol direct and indirect radiative effect by A. Milousis, K. Klingmüller, A. P. Tsimpidi, J. F. Kok, M. Kanakidou, M. Kanakidou, M. Kanakidou, A. Nenes, A. Nenes, V. A. Karydis

    Published 2025-01-01
    “…Thus, the radiative effect (RE) of NO<span class="inline-formula"><math xmlns="http://www.w3.org/1998/Math/MathML" id="M5" display="inline" overflow="scroll" dspmath="mathml"><mrow><msubsup><mi/><mn mathvariant="normal">3</mn><mo>-</mo></msubsup></mrow></math><span><svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="9pt" height="16pt" class="svg-formula" dspmath="mathimg" md5hash="8c72af1edd6d67ed562efcaf5163d22b"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="acp-25-1333-2025-ie00002.svg" width="9pt" height="16pt" src="acp-25-1333-2025-ie00002.png"/></svg:svg></span></span> aerosol may become more important than that of SO<span class="inline-formula"><math xmlns="http://www.w3.org/1998/Math/MathML" id="M6" display="inline" overflow="scroll" dspmath="mathml"><mrow><msubsup><mi/><mn mathvariant="normal">4</mn><mrow><mn mathvariant="normal">2</mn><mo>-</mo></mrow></msubsup></mrow></math><span><svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="13pt" height="17pt" class="svg-formula" dspmath="mathimg" md5hash="4a53e7d1f00f4334c934356877052515"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="acp-25-1333-2025-ie00003.svg" width="13pt" height="17pt" src="acp-25-1333-2025-ie00003.png"/></svg:svg></span></span> aerosol in the future. …”
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    The NANOGrav 15 Yr Data Set: Removing Pulsars One by One from the Pulsar Timing Array by Gabriella Agazie, Akash Anumarlapudi, Anne M. Archibald, Zaven Arzoumanian, Jeremy G. Baier, Paul T. Baker, Bence Bécsy, Laura Blecha, Adam Brazier, Paul R. Brook, Sarah Burke-Spolaor, J. Andrew Casey-Clyde, Maria Charisi, Shami Chatterjee, Tyler Cohen, James M. Cordes, Neil J. Cornish, Fronefield Crawford, H. Thankful Cromartie, Kathryn Crowter, Megan E. DeCesar, Paul B. Demorest, Heling Deng, Lankeswar Dey, Timothy Dolch, Elizabeth C. Ferrara, William Fiore, Emmanuel Fonseca, Gabriel E. Freedman, Emiko C. Gardiner, Nate Garver-Daniels, Peter A. Gentile, Kyle A. Gersbach, Joseph Glaser, Deborah C. Good, Lydia Guertin, Kayhan Gültekin, Jeffrey S. Hazboun, Ross J. Jennings, Aaron D. Johnson, Megan L. Jones, Andrew R. Kaiser, David L. Kaplan, Luke Zoltan Kelley, Matthew Kerr, Joey S. Key, Nima Laal, Michael T. Lam, William G. Lamb, Bjorn Larsen, T. Joseph W. Lazio, Natalia Lewandowska, Tingting Liu, Duncan R. Lorimer, Jing Luo, Ryan S. Lynch, Chung-Pei Ma, Dustin R. Madison, Alexander McEwen, James W. McKee, Maura A. McLaughlin, Natasha McMann, Bradley W. Meyers, Patrick M. Meyers, Hannah Middleton, Chiara M. F. Mingarelli, Andrea Mitridate, Christopher J. Moore, Cherry Ng, David J. Nice, Stella Koch Ocker, Ken D. Olum, Timothy T. Pennucci, Benetge B. P. Perera, Nihan S. Pol, Henri A. Radovan, Scott M. Ransom, Paul S. Ray, Joseph D. Romano, Jessie C. Runnoe, Alexander Saffer, Shashwat C. Sardesai, Ann Schmiedekamp, Carl Schmiedekamp, Kai Schmitz, Brent J. Shapiro-Albert, Xavier Siemens, Joseph Simon, Magdalena S. Siwek, Sophia V. Sosa Fiscella, Ingrid H. Stairs, Daniel R. Stinebring, Kevin Stovall, Abhimanyu Susobhanan, Joseph K. Swiggum, Stephen R. Taylor, Jacob E. Turner, Caner Unal, Michele Vallisneri, Alberto Vecchio, Sarah J. Vigeland, Haley M. Wahl, Caitlin A. Witt, David Wright, Olivia Young

    Published 2025-01-01
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  19. 439

    How long does carbon stay in a near-pristine central Amazon forest? An empirical estimate with radiocarbon by I. Chanca, I. Chanca, I. Chanca, I. Levin, S. Trumbore, K. Macario, K. Macario, K. Macario, J. Lavric, J. Lavric, C. A. Quesada, A. Carioca de Araújo, C. Quaresma Dias Júnior, H. van Asperen, S. Hammer, C. A. Sierra

    Published 2025-01-01
    “…For the campaign of October 2019, the mean <span class="inline-formula"><math xmlns="http://www.w3.org/1998/Math/MathML" id="M5" display="inline" overflow="scroll" dspmath="mathml"><mrow><mi mathvariant="normal">Δ</mi><msub><mrow class="chem"><msup><mi/><mn mathvariant="normal">14</mn></msup><mi mathvariant="normal">C</mi></mrow><mtext>ER</mtext></msub></mrow></math><span><svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="39pt" height="16pt" class="svg-formula" dspmath="mathimg" md5hash="2d71f983fa00940192893bb35b3f9993"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="bg-22-455-2025-ie00003.svg" width="39pt" height="16pt" src="bg-22-455-2025-ie00003.png"/></svg:svg></span></span> ranged from 24 ‰ to 41 ‰ with both Keeling and Miller–Tans methods. …”
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