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<article article-type="review-article" dtd-version="1.3" xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xml:lang="ru"><front><journal-meta><journal-id journal-id-type="publisher-id">ssmu</journal-id><journal-title-group><journal-title xml:lang="ru">Бюллетень сибирской медицины</journal-title><trans-title-group xml:lang="en"><trans-title>Bulletin of Siberian Medicine</trans-title></trans-title-group></journal-title-group><issn pub-type="ppub">1682-0363</issn><issn pub-type="epub">1819-3684</issn><publisher><publisher-name>Siberian State Medical University, the Ministry of Healthcare of the Russian Federation</publisher-name></publisher></journal-meta><article-meta><article-id pub-id-type="doi">10.20538/1682-0363-2024-4-169-176</article-id><article-id custom-type="elpub" pub-id-type="custom">ssmu-5884</article-id><article-categories><subj-group subj-group-type="heading"><subject>Research Article</subject></subj-group><subj-group subj-group-type="section-heading" xml:lang="ru"><subject>ОБЗОРЫ И ЛЕКЦИИ</subject></subj-group><subj-group subj-group-type="section-heading" xml:lang="en"><subject>REVIEW AND LECTURES</subject></subj-group></article-categories><title-group><article-title>Ангиогенин: биологическая роль, механизмы действия и участие в онкогенезе</article-title><trans-title-group xml:lang="en"><trans-title>Angiogenin: biological role, mechanisms of action, and participation in oncogenesis</trans-title></trans-title-group></title-group><contrib-group><contrib contrib-type="author" corresp="yes"><contrib-id contrib-id-type="orcid">https://orcid.org/0000-0002-0647-3576</contrib-id><name-alternatives><name name-style="eastern" xml:lang="ru"><surname>Михалев</surname><given-names>Д. Е.</given-names></name><name name-style="western" xml:lang="en"><surname>Mikhalev</surname><given-names>D. E.</given-names></name></name-alternatives><bio xml:lang="ru"><p>Михалев Дмитрий Евгеньевич – ассистент, кафедра стоматологии, </p><p>634050, г. Томск, Московский тракт, 2</p></bio><bio xml:lang="en"><p>2, Moskow Trakt, Tomsk, 634050</p></bio><email xlink:type="simple">dm199412@gmail.com</email><xref ref-type="aff" rid="aff-1"/></contrib><contrib contrib-type="author" corresp="yes"><contrib-id contrib-id-type="orcid">https://orcid.org/0009-0008-7371-318X</contrib-id><name-alternatives><name name-style="eastern" xml:lang="ru"><surname>Коротенко</surname><given-names>С. Н.</given-names></name><name name-style="western" xml:lang="en"><surname>Korotenko</surname><given-names>S. N.</given-names></name></name-alternatives><bio xml:lang="ru"><p>Коротенко Сергей Николаевич – аспирант, кафедра стоматологии,</p><p>634050, г. Томск, Московский тракт, 2</p></bio><bio xml:lang="en"><p>2, Moskow Trakt, Tomsk, 634050</p></bio><email xlink:type="simple">dr.korotenko@mail.ru</email><xref ref-type="aff" rid="aff-1"/></contrib><contrib contrib-type="author" corresp="yes"><contrib-id contrib-id-type="orcid">https://orcid.org/0009-0001-7162-1475</contrib-id><name-alternatives><name name-style="eastern" xml:lang="ru"><surname>Ломовских</surname><given-names>А. Ю.</given-names></name><name name-style="western" xml:lang="en"><surname>Lomovskikh</surname><given-names>A. Yu.</given-names></name></name-alternatives><bio xml:lang="ru"><p>Ломовских Анастасия Юрьевна – студент, лечебный факультет, </p><p>634050, г. Томск, Московский тракт, 2</p></bio><bio xml:lang="en"><p>2, Moskow Trakt, Tomsk, 634050</p></bio><email xlink:type="simple">anastasia17070316@mail.ru</email><xref ref-type="aff" rid="aff-1"/></contrib><contrib contrib-type="author" corresp="yes"><contrib-id contrib-id-type="orcid">https://orcid.org/0000-0002-4748-4175</contrib-id><name-alternatives><name name-style="eastern" xml:lang="ru"><surname>Байдик</surname><given-names>О. Д.</given-names></name><name name-style="western" xml:lang="en"><surname>Baydik</surname><given-names>O. D.</given-names></name></name-alternatives><bio xml:lang="ru"><p>Байдик Ольга Дмитриевна – д-р мед. наук, профессор, зав. кафедрой стоматологии,</p><p>634050, г. Томск, Московский тракт, 2</p></bio><bio xml:lang="en"><p>2, Moskow Trakt, Tomsk, 634050</p></bio><email xlink:type="simple">olgabajdik@yandex.ru</email><xref ref-type="aff" rid="aff-1"/></contrib></contrib-group><aff-alternatives id="aff-1"><aff xml:lang="ru"><institution>Сибирский государственный медицинский университет (СибГМУ)</institution><country>Россия</country></aff><aff xml:lang="en"><institution>Siberian State Medical University</institution><country>Russian Federation</country></aff></aff-alternatives><pub-date pub-type="collection"><year>2024</year></pub-date><pub-date pub-type="epub"><day>27</day><month>01</month><year>2025</year></pub-date><volume>23</volume><issue>4</issue><fpage>169</fpage><lpage>176</lpage><permissions><copyright-statement>Copyright &amp;#x00A9; Михалев Д.Е., Коротенко С.Н., Ломовских А.Ю., Байдик О.Д., 2025</copyright-statement><copyright-year>2025</copyright-year><copyright-holder xml:lang="ru">Михалев Д.Е., Коротенко С.Н., Ломовских А.Ю., Байдик О.Д.</copyright-holder><copyright-holder xml:lang="en">Mikhalev D.E., Korotenko S.N., Lomovskikh A.Y., Baydik O.D.</copyright-holder><license xml:lang="ru" license-type="creative-commons-attribution" xlink:href="https://creativecommons.org/licenses/by/4.0/" xlink:type="simple"><license-p>Данная работа распространяется под лицензией Creative Commons Attribution 4.0.</license-p></license><license xml:lang="en" license-type="creative-commons-attribution" xlink:href="https://creativecommons.org/licenses/by/4.0/" xlink:type="simple"><license-p>This work is licensed under a Creative Commons Attribution 4.0 License.</license-p></license></permissions><self-uri xlink:href="https://bulletin.ssmu.ru/jour/article/view/5884">https://bulletin.ssmu.ru/jour/article/view/5884</self-uri><abstract><p>Ангиогенин – небольшой полипептид, состоящий из 123 аминокислот, вовлеченный в процессы ангиогенеза и онкогенеза. Данный белок играет важную роль в различных физиологических и патологических процессах посредством регуляции пролиферации, выживания, миграции, инвазии и дифференцировки клеток.</p><p>В лекции представлены данные о получении, взаимодействии ангиогенина с различными белками, приведены механизмы действия, показана биологическая роль в ангиогенезе и онкогенезе. Поиск литературы осуществлялся в поисковых системах PubMed, Medline, Elibrary, Scopus, The Cochrane Library, РИНЦ.</p></abstract><trans-abstract xml:lang="en"><p>Angiogenin is a small polypeptide consisting of 123 amino acids involved in the processes of angiogenesis and tumorigenesis. This protein plays an important role in various physiological and pathological processes through the regulation of cell proliferation, survival, migration, invasion, and differentiation.</p><p>The lecture presents data on angiogenin production and interaction with various proteins, describes mechanisms of its action, and shows its biological role in angiogenesis and oncogenesis. The literature search was carried out in the PubMed, Medline, Elibrary, Scopus, The Cochrane Library, and RSCI search engines.</p></trans-abstract><kwd-group xml:lang="ru"><kwd>ангиогенин</kwd><kwd>ангиогенез</kwd><kwd>канцерогенез</kwd><kwd>биологически активные вещества</kwd></kwd-group><kwd-group xml:lang="en"><kwd>angiogenin</kwd><kwd>angiogenesis</kwd><kwd>carcinogenesis</kwd><kwd>biologically active substances</kwd></kwd-group></article-meta></front><back><ref-list><title>References</title><ref id="cit1"><label>1</label><citation-alternatives><mixed-citation xml:lang="ru">Wee P., Wang Z. Epidermal growth factor receptor cell proliferation signaling pathways. Cancers (Basel). 2017;9(5):52–65. DOI: 10.3390/cancers9050052.</mixed-citation><mixed-citation xml:lang="en">Wee P., Wang Z. Epidermal growth factor receptor cell proliferation signaling pathways. Cancers (Basel). 2017;9(5):52–65. DOI: 10.3390/cancers9050052.</mixed-citation></citation-alternatives></ref><ref id="cit2"><label>2</label><citation-alternatives><mixed-citation xml:lang="ru">Schenck K., Schreurs O., Hayashi K., Helgeland K. The role of nerve growth factor (NGF) and its precursor forms in oral wound healing. International Journal of Molecular Sciences. 2017;18(2):386–398. DOI: 10.3390/ijms18020386.</mixed-citation><mixed-citation xml:lang="en">Schenck K., Schreurs O., Hayashi K., Helgeland K. The role of nerve growth factor (NGF) and its precursor forms in oral wound healing. International Journal of Molecular Sciences. 2017;18(2):386–398. DOI: 10.3390/ijms18020386.</mixed-citation></citation-alternatives></ref><ref id="cit3"><label>3</label><citation-alternatives><mixed-citation xml:lang="ru">Hume R.D., Deshmukh T., Doan T., Shim W.J., Kanagalingam S., Tallapragada V. et al. PDGF-AB reduces myofibroblast differentiation without increasing proliferation after myocardial infarction. JACC. Basic to Translational Science. 2023;(8)6:658–674. DOI: 10.1016/j.jacbts.2022.11.006</mixed-citation><mixed-citation xml:lang="en">Hume R.D., Deshmukh T., Doan T., Shim W.J., Kanagalingam S., Tallapragada V. et al. PDGF-AB reduces myofibroblast differentiation without increasing proliferation after myocardial infarction. JACC. Basic to Translational Science. 2023;(8)6:658–674. DOI: 10.1016/j.jacbts.2022.11.006</mixed-citation></citation-alternatives></ref><ref id="cit4"><label>4</label><citation-alternatives><mixed-citation xml:lang="ru">Yamakawa S., Hayashida K. Advances in surgical applications of growth factors for wound healing. Burns &amp; Trauma. 2019;7:10–17. DOI: 10.1186/s41038-019-0148-1.</mixed-citation><mixed-citation xml:lang="en">Yamakawa S., Hayashida K. Advances in surgical applications of growth factors for wound healing. Burns &amp; Trauma. 2019;7:10–17. DOI: 10.1186/s41038-019-0148-1.</mixed-citation></citation-alternatives></ref><ref id="cit5"><label>5</label><citation-alternatives><mixed-citation xml:lang="ru">Mihaylova Z., Tsikandelova R., Sanimirov P., Gateva N., Mitev V., Ishkitiev N. Role of PDGF-BB in proliferation, differentiation and maintaining stem cell properties of PDL cells in vitro. Archives of Oral Biology. 2018;85:1–9. DOI: 10.1016/j.archoralbio.2017.09.019.</mixed-citation><mixed-citation xml:lang="en">Mihaylova Z., Tsikandelova R., Sanimirov P., Gateva N., Mitev V., Ishkitiev N. Role of PDGF-BB in proliferation, differentiation and maintaining stem cell properties of PDL cells in vitro. Archives of Oral Biology. 2018;85:1–9. DOI: 10.1016/j.archoralbio.2017.09.019.</mixed-citation></citation-alternatives></ref><ref id="cit6"><label>6</label><citation-alternatives><mixed-citation xml:lang="ru">Heldin C.H., Lennartsson J., Westermark B. Involvement of platelet-derived growth factor ligands and receptors in tumorigenesis. Journal of Internal Medicine. 2018;283(1):16–44. DOI: 10.1111/joim.12690.</mixed-citation><mixed-citation xml:lang="en">Heldin C.H., Lennartsson J., Westermark B. Involvement of platelet-derived growth factor ligands and receptors in tumorigenesis. Journal of Internal Medicine. 2018;283(1):16–44. DOI: 10.1111/joim.12690.</mixed-citation></citation-alternatives></ref><ref id="cit7"><label>7</label><citation-alternatives><mixed-citation xml:lang="ru">Lyons S.M., Fay M.M., Akiyama Y., Anderson P.J., Ivanov P. RNA biology of angiogenin: current state and perspectives. RNA Biology. 2017;14(2):171–178. DOI: 10.1080/15476286.2016.1272746.</mixed-citation><mixed-citation xml:lang="en">Lyons S.M., Fay M.M., Akiyama Y., Anderson P.J., Ivanov P. RNA biology of angiogenin: current state and perspectives. RNA Biology. 2017;14(2):171–178. DOI: 10.1080/15476286.2016.1272746.</mixed-citation></citation-alternatives></ref><ref id="cit8"><label>8</label><citation-alternatives><mixed-citation xml:lang="ru">Lugano R., Ramachandra M., Dimberg A. Tumor angiogenesis: causes, consequences, challenges and opportunities. Cellular and Molecular Life Sciences. 2020;77:1745–1770. DOI: 1007/s00018-019-03351-7.</mixed-citation><mixed-citation xml:lang="en">Lugano R., Ramachandra M., Dimberg A. Tumor angiogenesis: causes, consequences, challenges and opportunities. Cellular and Molecular Life Sciences. 2020;77:1745–1770. DOI: 1007/s00018-019-03351-7.</mixed-citation></citation-alternatives></ref><ref id="cit9"><label>9</label><citation-alternatives><mixed-citation xml:lang="ru">Isali I., Al-Sadawi M.A.A., Qureshi A., Khalifa A.O., Agrawal M.K., Shukla S. Growth factors involve in cellular proliferation, differentiation and migration during prostate cancer metastasis. International Journal of Cell Biology. 2019;2(1- 2):1–13.</mixed-citation><mixed-citation xml:lang="en">Isali I., Al-Sadawi M.A.A., Qureshi A., Khalifa A.O., Agrawal M.K., Shukla S. Growth factors involve in cellular proliferation, differentiation and migration during prostate cancer metastasis. International Journal of Cell Biology. 2019;2(1- 2):1–13.</mixed-citation></citation-alternatives></ref><ref id="cit10"><label>10</label><citation-alternatives><mixed-citation xml:lang="ru">Fernández-Guarino M., Hernández-Bule M.L., Bacci S. Cellular and molecular processes in wound healing. Biomedicines. 2023;11(9):2526–2532. DOI: 10.3390/biomedicines11092526.</mixed-citation><mixed-citation xml:lang="en">Fernández-Guarino M., Hernández-Bule M.L., Bacci S. Cellular and molecular processes in wound healing. Biomedicines. 2023;11(9):2526–2532. DOI: 10.3390/biomedicines11092526.</mixed-citation></citation-alternatives></ref><ref id="cit11"><label>11</label><citation-alternatives><mixed-citation xml:lang="ru">Yurina N.V., Ageeva T.A., Goryachkin A.M., Varaksin N. Effects of recombinant angiogenin on collagen fiber formation and angiogenesis in the dermis of Wistar rats. Clinical, Cosmetic and Investigational Dermatology. 2021;14:187–196. DOI: 10.2147/CCID.S294825.</mixed-citation><mixed-citation xml:lang="en">Yurina N.V., Ageeva T.A., Goryachkin A.M., Varaksin N. Effects of recombinant angiogenin on collagen fiber formation and angiogenesis in the dermis of Wistar rats. Clinical, Cosmetic and Investigational Dermatology. 2021;14:187–196. DOI: 10.2147/CCID.S294825.</mixed-citation></citation-alternatives></ref><ref id="cit12"><label>12</label><citation-alternatives><mixed-citation xml:lang="ru">Sultana M.F., Abo H., Kawashima H. Human and mouse angiogenins: emerging insights and potential opportunities. Frontiers in Microbiology. 2022;13:1022945. DOI: 10.3389/fmicb.2022.1022945.</mixed-citation><mixed-citation xml:lang="en">Sultana M.F., Abo H., Kawashima H. Human and mouse angiogenins: emerging insights and potential opportunities. Frontiers in Microbiology. 2022;13:1022945. DOI: 10.3389/fmicb.2022.1022945.</mixed-citation></citation-alternatives></ref><ref id="cit13"><label>13</label><citation-alternatives><mixed-citation xml:lang="ru">Marzo T., Ferraro G., Cucci L.M., Pratesi A., Hansson Ö., Satriano C. et al. Oxaliplatin inhibits angiogenin proliferative and cell migration effects in prostate cancer cells. Journal of Inorganic Biochemistry. 2021;226:111657. DOI: 10.1016/j.jinorgbio.2021.111657.</mixed-citation><mixed-citation xml:lang="en">Marzo T., Ferraro G., Cucci L.M., Pratesi A., Hansson Ö., Satriano C. et al. Oxaliplatin inhibits angiogenin proliferative and cell migration effects in prostate cancer cells. Journal of Inorganic Biochemistry. 2021;226:111657. DOI: 10.1016/j.jinorgbio.2021.111657.</mixed-citation></citation-alternatives></ref><ref id="cit14"><label>14</label><citation-alternatives><mixed-citation xml:lang="ru">Naletova I., Cucci L., D’Angeli F., Anfuso C., Magrì A., Mendola D. et al. A tunable nanoplatform of nanogold function alised with angiogenin peptides for anti-angiogenic therapy of brain tumours. Cancers (Basel). 2019;11(9):1322–1350. DOI: 10.3390/cancers11091322.</mixed-citation><mixed-citation xml:lang="en">Naletova I., Cucci L., D’Angeli F., Anfuso C., Magrì A., Mendola D. et al. A tunable nanoplatform of nanogold function alised with angiogenin peptides for anti-angiogenic therapy of brain tumours. Cancers (Basel). 2019;11(9):1322–1350. DOI: 10.3390/cancers11091322.</mixed-citation></citation-alternatives></ref><ref id="cit15"><label>15</label><citation-alternatives><mixed-citation xml:lang="ru">Hoang T.T., Raines R.T. Molecular basis for the autonomous promotion of cell proliferation by angiogenin. Nucleic Acids Research. 2017;45(2):818–831. DOI: 10.1093/nar/gkw1192.</mixed-citation><mixed-citation xml:lang="en">Hoang T.T., Raines R.T. Molecular basis for the autonomous promotion of cell proliferation by angiogenin. Nucleic Acids Research. 2017;45(2):818–831. DOI: 10.1093/nar/gkw1192.</mixed-citation></citation-alternatives></ref><ref id="cit16"><label>16</label><citation-alternatives><mixed-citation xml:lang="ru">Kastberg L.L., Barbera A.R., Jensen M.K., Workman C.T. Burden imposed by heterologous protein production in two major industrial yeast cell factories: identifying sources and mitigation strategies. Frontiers in Fungal Biology. 2022;3:827704. DOI: 10.3389/ffunb.2022.827704.</mixed-citation><mixed-citation xml:lang="en">Kastberg L.L., Barbera A.R., Jensen M.K., Workman C.T. Burden imposed by heterologous protein production in two major industrial yeast cell factories: identifying sources and mitigation strategies. Frontiers in Fungal Biology. 2022;3:827704. DOI: 10.3389/ffunb.2022.827704.</mixed-citation></citation-alternatives></ref><ref id="cit17"><label>17</label><citation-alternatives><mixed-citation xml:lang="ru">Mastropietro G., Aw R., Polizzi K.M. Expression of proteins in Pichia pastoris. Methods in Enzymology. 2021;660:53–80. DOI: 10.1016/bs.mie.2021.07.004.</mixed-citation><mixed-citation xml:lang="en">Mastropietro G., Aw R., Polizzi K.M. Expression of proteins in Pichia pastoris. Methods in Enzymology. 2021;660:53–80. DOI: 10.1016/bs.mie.2021.07.004.</mixed-citation></citation-alternatives></ref><ref id="cit18"><label>18</label><citation-alternatives><mixed-citation xml:lang="ru">Пуртов А.А., Мамаев А.Л. Рекомбинантная плазмида для экспрессии в дрожжах Pichia pastoris гена химерного белка ангиогенина человека и штамм дрожжей Pichia pastoris – продуцент рекомбинантного химерного белка ангиогенина человека. Российская Федерация RU 2658758. 2017.10.02 ООО «Лаборатория ангиофарм».</mixed-citation><mixed-citation xml:lang="en">Пуртов А.А., Мамаев А.Л. Рекомбинантная плазмида для экспрессии в дрожжах Pichia pastoris гена химерного белка ангиогенина человека и штамм дрожжей Pichia pastoris – продуцент рекомбинантного химерного белка ангиогенина человека. Российская Федерация RU 2658758. 2017.10.02 ООО «Лаборатория ангиофарм».</mixed-citation></citation-alternatives></ref><ref id="cit19"><label>19</label><citation-alternatives><mixed-citation xml:lang="ru">Yu D., Cai Y., Zhou W., Sheng J., Xu Z. The Potential of Angiogenin as a Serum Biomarker for Diseases: Systematic Review and Meta-Analysis. Disease Markers. 2018;15(2018): 1984718. DOI: 10.1155/2018/1984718.</mixed-citation><mixed-citation xml:lang="en">Yu D., Cai Y., Zhou W., Sheng J., Xu Z. The Potential of Angiogenin as a Serum Biomarker for Diseases: Systematic Review and Meta-Analysis. Disease Markers. 2018;15(2018): 1984718. DOI: 10.1155/2018/1984718.</mixed-citation></citation-alternatives></ref><ref id="cit20"><label>20</label><citation-alternatives><mixed-citation xml:lang="ru">Garnett E.R., Raines R.T. Emerging biological functions of ribonuclease 1 and angiogenin. Critical Reviews in Biochemistry and Molecular Biology. 2022;57(3):244–260. DOI: 10.1080/10409238.2021.2004577.</mixed-citation><mixed-citation xml:lang="en">Garnett E.R., Raines R.T. Emerging biological functions of ribonuclease 1 and angiogenin. Critical Reviews in Biochemistry and Molecular Biology. 2022;57(3):244–260. DOI: 10.1080/10409238.2021.2004577.</mixed-citation></citation-alternatives></ref><ref id="cit21"><label>21</label><citation-alternatives><mixed-citation xml:lang="ru">Mao M., Chen W., Ye D. Research progress on the structure, function, and use of angiogenin in malignant tumours. Heliyon. 2024;10(9):e30654. DOI: 10.1016/j.heliyon.2024.e30654.</mixed-citation><mixed-citation xml:lang="en">Mao M., Chen W., Ye D. Research progress on the structure, function, and use of angiogenin in malignant tumours. Heliyon. 2024;10(9):e30654. DOI: 10.1016/j.heliyon.2024.e30654.</mixed-citation></citation-alternatives></ref><ref id="cit22"><label>22</label><citation-alternatives><mixed-citation xml:lang="ru">Stillinovic M., Sarangdhar M.A., Andina N., Tardivel A., Greub F., Bambaci G. et al. Ribonuclease inhibitor and angiogenin system regulates cell type-specific global translation. Science Advances. 2024;10(22):eadl0320. DOI: 10.1126/sciadv.adl0320.</mixed-citation><mixed-citation xml:lang="en">Stillinovic M., Sarangdhar M.A., Andina N., Tardivel A., Greub F., Bambaci G. et al. Ribonuclease inhibitor and angiogenin system regulates cell type-specific global translation. Science Advances. 2024;10(22):eadl0320. DOI: 10.1126/sciadv.adl0320.</mixed-citation></citation-alternatives></ref><ref id="cit23"><label>23</label><citation-alternatives><mixed-citation xml:lang="ru">Jinghao S., Zhengping X. Three decades of research on angiogenin: a review and perspective. Acta Biochimica et Biophysica Sinica. 2016;48(5):399–410. DOI: 10.1093/abbs/gmv131.</mixed-citation><mixed-citation xml:lang="en">Jinghao S., Zhengping X. Three decades of research on angiogenin: a review and perspective. Acta Biochimica et Biophysica Sinica. 2016;48(5):399–410. DOI: 10.1093/abbs/gmv131.</mixed-citation></citation-alternatives></ref><ref id="cit24"><label>24</label><citation-alternatives><mixed-citation xml:lang="ru">Gupta S., Chittoria R.K., Chavan V., Aggarwal A., Reddy L.C., Mohan P.B. et al. Role of burn blister fluid in wound healing. Journal of Cutaneous and Aesthetic Surgery. 2021;14(3):370– 373. DOI: 10.4103/JCAS.JCAS_90_19.</mixed-citation><mixed-citation xml:lang="en">Gupta S., Chittoria R.K., Chavan V., Aggarwal A., Reddy L.C., Mohan P.B. et al. Role of burn blister fluid in wound healing. Journal of Cutaneous and Aesthetic Surgery. 2021;14(3):370– 373. DOI: 10.4103/JCAS.JCAS_90_19.</mixed-citation></citation-alternatives></ref><ref id="cit25"><label>25</label><citation-alternatives><mixed-citation xml:lang="ru">Rajala R. How big is the endothelium? Comment on “Spatial and temporal dynamics of the endothelium”. Journal of Thrombosis and Haemostasis. 2021;19(10):2634–2635. DOI: 10.1111/jth.15469.</mixed-citation><mixed-citation xml:lang="en">Rajala R. How big is the endothelium? Comment on “Spatial and temporal dynamics of the endothelium”. Journal of Thrombosis and Haemostasis. 2021;19(10):2634–2635. DOI: 10.1111/jth.15469.</mixed-citation></citation-alternatives></ref><ref id="cit26"><label>26</label><citation-alternatives><mixed-citation xml:lang="ru">Lyons S.M., Fay M.M., Akiyama Y., Anderson P.J., Ivanov P. RNA biology of angiogenin: Current state and perspectives. RNA Biology. 2017;14(2):171-178. DOI: 10.1080/15476286.2016.1272746.</mixed-citation><mixed-citation xml:lang="en">Lyons S.M., Fay M.M., Akiyama Y., Anderson P.J., Ivanov P. RNA biology of angiogenin: Current state and perspectives. RNA Biology. 2017;14(2):171-178. DOI: 10.1080/15476286.2016.1272746.</mixed-citation></citation-alternatives></ref><ref id="cit27"><label>27</label><citation-alternatives><mixed-citation xml:lang="ru">Cucci L.M., Satriano C., Marzo T., La Mendola D. Angiogenin and copper crossing in wound healing. International Journal of Molecular Sciences. 2021;22(19):10704. DOI: 10.3390/ijms221910704.</mixed-citation><mixed-citation xml:lang="en">Cucci L.M., Satriano C., Marzo T., La Mendola D. Angiogenin and copper crossing in wound healing. International Journal of Molecular Sciences. 2021;22(19):10704. DOI: 10.3390/ijms221910704.</mixed-citation></citation-alternatives></ref><ref id="cit28"><label>28</label><citation-alternatives><mixed-citation xml:lang="ru">Cong X., Cremer C., Nachreiner T., Barth S., Carloni P. Engineered human angiogenin mutations in the placental ribonuclease inhibitor complex for anticancer therapy: Insights from enhanced sampling simulations. Protein Science. 2016;25(8):1451–1460. DOI: 10.1002/pro.2941.</mixed-citation><mixed-citation xml:lang="en">Cong X., Cremer C., Nachreiner T., Barth S., Carloni P. Engineered human angiogenin mutations in the placental ribonuclease inhibitor complex for anticancer therapy: Insights from enhanced sampling simulations. Protein Science. 2016;25(8):1451–1460. DOI: 10.1002/pro.2941.</mixed-citation></citation-alternatives></ref><ref id="cit29"><label>29</label><citation-alternatives><mixed-citation xml:lang="ru">Sarangdhar M.A., Allam R. Angiogenin (ANG)-ribonuclease inhibitor (RNH1) system in protein synthesis and disease. International Journal of Molecular Sciences. 2021;22(3):1287– 1293. DOI: 10.3390/ijms22031287.</mixed-citation><mixed-citation xml:lang="en">Sarangdhar M.A., Allam R. Angiogenin (ANG)-ribonuclease inhibitor (RNH1) system in protein synthesis and disease. International Journal of Molecular Sciences. 2021;22(3):1287– 1293. DOI: 10.3390/ijms22031287.</mixed-citation></citation-alternatives></ref><ref id="cit30"><label>30</label><citation-alternatives><mixed-citation xml:lang="ru">Janik S., Bekos C., Hacker P., Raunegger T., Schiefer A.I., Müllauer L. et al. Follistatin impacts tumor angiogenesis and outcome in thymic epithelial tumors. Scientific Reports. 2019;9(1):17359. DOI: 10.1038/s41598-019-53671-8.</mixed-citation><mixed-citation xml:lang="en">Janik S., Bekos C., Hacker P., Raunegger T., Schiefer A.I., Müllauer L. et al. Follistatin impacts tumor angiogenesis and outcome in thymic epithelial tumors. Scientific Reports. 2019;9(1):17359. DOI: 10.1038/s41598-019-53671-8.</mixed-citation></citation-alternatives></ref><ref id="cit31"><label>31</label><citation-alternatives><mixed-citation xml:lang="ru">Huang Z., Yu C., Yu L., Shu H., Zhu X. The Roles of FHL3 in Cancer. Frontiers in Oncology. 2022;12:887828. DOI: 10.3389/fonc.2022.887828.</mixed-citation><mixed-citation xml:lang="en">Huang Z., Yu C., Yu L., Shu H., Zhu X. The Roles of FHL3 in Cancer. Frontiers in Oncology. 2022;12:887828. DOI: 10.3389/fonc.2022.887828.</mixed-citation></citation-alternatives></ref><ref id="cit32"><label>32</label><citation-alternatives><mixed-citation xml:lang="ru">Shi P., Xu J., Cui H. The Recent Research Progress of NF-κB signaling on the proliferation, migration, invasion, immune escape and drug resistance of glioblastoma. International Journal of Molecular. 2023;24(12):10337. DOI: 10.3390/ijms241210337.</mixed-citation><mixed-citation xml:lang="en">Shi P., Xu J., Cui H. The Recent Research Progress of NF-κB signaling on the proliferation, migration, invasion, immune escape and drug resistance of glioblastoma. International Journal of Molecular. 2023;24(12):10337. DOI: 10.3390/ijms241210337.</mixed-citation></citation-alternatives></ref><ref id="cit33"><label>33</label><citation-alternatives><mixed-citation xml:lang="ru">Wang Y.N., Lee H.H., Chou C.K., Yang W.H. Angiogenin/ ribonuclease 5 Is an EGFR ligand and a serum biomarker for erlotinib sensitivity in pancreatic cancer. Cancer Cell. 2018;33(4):752–769.e8. DOI: 10.1016/j.ccell.2018.02.012.</mixed-citation><mixed-citation xml:lang="en">Wang Y.N., Lee H.H., Chou C.K., Yang W.H. Angiogenin/ ribonuclease 5 Is an EGFR ligand and a serum biomarker for erlotinib sensitivity in pancreatic cancer. Cancer Cell. 2018;33(4):752–769.e8. DOI: 10.1016/j.ccell.2018.02.012.</mixed-citation></citation-alternatives></ref><ref id="cit34"><label>34</label><citation-alternatives><mixed-citation xml:lang="ru">Hoang T.T., Johnson D.A., Raines R.T., Johnson J.A. Angiogenin activates the astrocytic Nrf2/antioxidant-response element pathway and thereby protects murine neurons from oxidative stress. The Journal of Biological Chemistry. 2019;294(41):15095–15103. DOI: 10.1074/jbc.RA119.008491.</mixed-citation><mixed-citation xml:lang="en">Hoang T.T., Johnson D.A., Raines R.T., Johnson J.A. Angiogenin activates the astrocytic Nrf2/antioxidant-response element pathway and thereby protects murine neurons from oxidative stress. The Journal of Biological Chemistry. 2019;294(41):15095–15103. DOI: 10.1074/jbc.RA119.008491.</mixed-citation></citation-alternatives></ref><ref id="cit35"><label>35</label><citation-alternatives><mixed-citation xml:lang="ru">Yeo K.J., Jee J.G., Hwang E., Kim E.H., Jeon Y.H., Cheong H.K. Interaction between human angiogenin and the p53 TAD2 domain and its implication for inhibitor discovery. FEBS Letters. 2017;591(23):3916–3925. DOI: 10.1002/1873-3468.12899.</mixed-citation><mixed-citation xml:lang="en">Yeo K.J., Jee J.G., Hwang E., Kim E.H., Jeon Y.H., Cheong H.K. Interaction between human angiogenin and the p53 TAD2 domain and its implication for inhibitor discovery. FEBS Letters. 2017;591(23):3916–3925. DOI: 10.1002/1873-3468.12899.</mixed-citation></citation-alternatives></ref><ref id="cit36"><label>36</label><citation-alternatives><mixed-citation xml:lang="ru">Bultman K., Uebersohn A., Dickson K. Angiogenin interacts with heat shock factor 1. FASEB Journal. 2015;29:sp880.30. DOI: 10.1096/fasebj.29.1_supplement.880.30.</mixed-citation><mixed-citation xml:lang="en">Bultman K., Uebersohn A., Dickson K. Angiogenin interacts with heat shock factor 1. FASEB Journal. 2015;29:sp880.30. DOI: 10.1096/fasebj.29.1_supplement.880.30.</mixed-citation></citation-alternatives></ref><ref id="cit37"><label>37</label><citation-alternatives><mixed-citation xml:lang="ru">Loveland A.B., Koh C.S., Ganesan R., Jacobson A., Korostelev A.A. Structural mechanism of angiogenin activation by the ribosome. Nature. 2024;630(8017):769–776. DOI: 10.1038/s41586-024-07508-8.</mixed-citation><mixed-citation xml:lang="en">Loveland A.B., Koh C.S., Ganesan R., Jacobson A., Korostelev A.A. Structural mechanism of angiogenin activation by the ribosome. Nature. 2024;630(8017):769–776. DOI: 10.1038/s41586-024-07508-8.</mixed-citation></citation-alternatives></ref><ref id="cit38"><label>38</label><citation-alternatives><mixed-citation xml:lang="ru">Su Z., Kuscu C., Malik A., Shibata E., Dutta A. Angiogenin generates specific stress-induced tRNA halves and is not involved in tRF-3-mediated gene silencing. The Journal of Biological Chemistry. 2019;294(45):16930-16941. DOI: 10.1074/jbc.RA119.009272.</mixed-citation><mixed-citation xml:lang="en">Su Z., Kuscu C., Malik A., Shibata E., Dutta A. Angiogenin generates specific stress-induced tRNA halves and is not involved in tRF-3-mediated gene silencing. The Journal of Biological Chemistry. 2019;294(45):16930-16941. DOI: 10.1074/jbc.RA119.009272.</mixed-citation></citation-alternatives></ref><ref id="cit39"><label>39</label><citation-alternatives><mixed-citation xml:lang="ru">Rashad S., Niizuma K., Tominaga T. tRNA cleavage: a new insight. Neural Regeneration Research. 2020;15(1):47–52. DOI: 10.4103/1673-5374.264447.</mixed-citation><mixed-citation xml:lang="en">Rashad S., Niizuma K., Tominaga T. tRNA cleavage: a new insight. Neural Regeneration Research. 2020;15(1):47–52. DOI: 10.4103/1673-5374.264447.</mixed-citation></citation-alternatives></ref><ref id="cit40"><label>40</label><citation-alternatives><mixed-citation xml:lang="ru">Fu M., Gu J., Wang M., Zhang J., Chen Y., Jiang P. et al. Emerging roles of tRNA-derived fragments in cancer. Molecular Cancer. 2023;22(1):30–36. DOI: 10.1186/s12943-023-01739-5.</mixed-citation><mixed-citation xml:lang="en">Fu M., Gu J., Wang M., Zhang J., Chen Y., Jiang P. et al. Emerging roles of tRNA-derived fragments in cancer. Molecular Cancer. 2023;22(1):30–36. DOI: 10.1186/s12943-023-01739-5.</mixed-citation></citation-alternatives></ref><ref id="cit41"><label>41</label><citation-alternatives><mixed-citation xml:lang="ru">Guzzi N., Bellodi C. Novel insights into the emerging roles of tRNA-derived fragments in mammalian development. RNA Biology. 2020;17(8):1214–1222. DOI: 10.1080/15476286.2020.1732694.</mixed-citation><mixed-citation xml:lang="en">Guzzi N., Bellodi C. Novel insights into the emerging roles of tRNA-derived fragments in mammalian development. RNA Biology. 2020;17(8):1214–1222. DOI: 10.1080/15476286.2020.1732694.</mixed-citation></citation-alternatives></ref><ref id="cit42"><label>42</label><citation-alternatives><mixed-citation xml:lang="ru">Weng C., Dong H., Mao J., Lang X., Chen J. characterization and function of the interaction of angiogenin with alpha-ac tinin 2. Frontiers in Molecular Biosciences. 2022;9:837971. DOI: 10.3389/fmolb.2022.837971.</mixed-citation><mixed-citation xml:lang="en">Weng C., Dong H., Mao J., Lang X., Chen J. characterization and function of the interaction of angiogenin with alpha-ac tinin 2. Frontiers in Molecular Biosciences. 2022;9:837971. DOI: 10.3389/fmolb.2022.837971.</mixed-citation></citation-alternatives></ref><ref id="cit43"><label>43</label><citation-alternatives><mixed-citation xml:lang="ru">Bharadwaj A.G., Holloway R.W., Miller V.A., Waisman D.M. Plasmin and plasminogen system in the tumor microenvironment: implications for cancer diagnosis, prognosis, and therapy. Cancers (Basel). 2021;13(8):1838–1845. DOI: 10.3390/ cancers13081838.</mixed-citation><mixed-citation xml:lang="en">Bharadwaj A.G., Holloway R.W., Miller V.A., Waisman D.M. Plasmin and plasminogen system in the tumor microenvironment: implications for cancer diagnosis, prognosis, and therapy. Cancers (Basel). 2021;13(8):1838–1845. DOI: 10.3390/ cancers13081838.</mixed-citation></citation-alternatives></ref><ref id="cit44"><label>44</label><citation-alternatives><mixed-citation xml:lang="ru">Kushwaha A., Goswami L., Kim B.S. Nanomaterial-based therapy for wound healing. Nanomaterials (Basel). 2022;12(4):618–630. DOI: 10.3390/nano12040618.</mixed-citation><mixed-citation xml:lang="en">Kushwaha A., Goswami L., Kim B.S. Nanomaterial-based therapy for wound healing. Nanomaterials (Basel). 2022;12(4):618–630. DOI: 10.3390/nano12040618.</mixed-citation></citation-alternatives></ref><ref id="cit45"><label>45</label><citation-alternatives><mixed-citation xml:lang="ru">Veith A.P., Henderson K., Spencer A., Sligar A.D., Baker A.B. Therapeutic strategies for enhancing angiogenesis in wound healing. Advanced Drug Delivery Reviews. 2019;146:97–125. DOI: 10.1016/j.addr.2018.09.010.</mixed-citation><mixed-citation xml:lang="en">Veith A.P., Henderson K., Spencer A., Sligar A.D., Baker A.B. Therapeutic strategies for enhancing angiogenesis in wound healing. Advanced Drug Delivery Reviews. 2019;146:97–125. DOI: 10.1016/j.addr.2018.09.010.</mixed-citation></citation-alternatives></ref><ref id="cit46"><label>46</label><citation-alternatives><mixed-citation xml:lang="ru">Weng C., Dong H., Bai R., Sheng J., Chen G., Ding K. et al. Angiogenin promotes angiogenesis via the endonucleolytic decay of miR-141 in colorectal cancer. Molecular Therapy. Nucleic Acids. 2022;27:1010–1022. DOI: 10.1016/j.omtn.2022.01.017.</mixed-citation><mixed-citation xml:lang="en">Weng C., Dong H., Bai R., Sheng J., Chen G., Ding K. et al. Angiogenin promotes angiogenesis via the endonucleolytic decay of miR-141 in colorectal cancer. Molecular Therapy. Nucleic Acids. 2022;27:1010–1022. DOI: 10.1016/j.omtn.2022.01.017.</mixed-citation></citation-alternatives></ref><ref id="cit47"><label>47</label><citation-alternatives><mixed-citation xml:lang="ru">Yang H., Yuan L., Ibaragi S., Li S., Shapiro R., Vanli N. et al. Angiogenin and plexin-B2 axis promotes glioblastoma progression by enhancing invasion, vascular association, proliferation and survival. British Journal of Cancer. 2022;127(3):422–435. DOI: 10.1038/s41416-022-01814-6.</mixed-citation><mixed-citation xml:lang="en">Yang H., Yuan L., Ibaragi S., Li S., Shapiro R., Vanli N. et al. Angiogenin and plexin-B2 axis promotes glioblastoma progression by enhancing invasion, vascular association, proliferation and survival. British Journal of Cancer. 2022;127(3):422–435. DOI: 10.1038/s41416-022-01814-6.</mixed-citation></citation-alternatives></ref><ref id="cit48"><label>48</label><citation-alternatives><mixed-citation xml:lang="ru">Mao M., Chen W., Ye D. Research progress on the structure, function, and use of angiogenin in malignant tumours. Heliyon. 2024;10(9):e30654. DOI: 10.1016/j.heliyon.2024.e30654.</mixed-citation><mixed-citation xml:lang="en">Mao M., Chen W., Ye D. Research progress on the structure, function, and use of angiogenin in malignant tumours. Heliyon. 2024;10(9):e30654. DOI: 10.1016/j.heliyon.2024.e30654.</mixed-citation></citation-alternatives></ref><ref id="cit49"><label>49</label><citation-alternatives><mixed-citation xml:lang="ru">Manuelli V., Pecorari C., Filomeni G., Zito E. Regulation of redox signaling in HIF-1-dependent tumor angiogenesis. The FEBS Journal. 2022;289(18):5413–5425. DOI: 10.1111/febs.16110.</mixed-citation><mixed-citation xml:lang="en">Manuelli V., Pecorari C., Filomeni G., Zito E. Regulation of redox signaling in HIF-1-dependent tumor angiogenesis. The FEBS Journal. 2022;289(18):5413–5425. DOI: 10.1111/febs.16110.</mixed-citation></citation-alternatives></ref><ref id="cit50"><label>50</label><citation-alternatives><mixed-citation xml:lang="ru">Marei H.E., Althani A., Afifi N., Hasan A., Caceci T., Cifola I. et al. Glioma extracellular vesicles for precision medicine: prognostic and theragnostic application. Discover Oncology. 2022;13(1):49. DOI: 10.1007/s12672-022-00514-0.</mixed-citation><mixed-citation xml:lang="en">Marei H.E., Althani A., Afifi N., Hasan A., Caceci T., Cifola I. et al. Glioma extracellular vesicles for precision medicine: prognostic and theragnostic application. Discover Oncology. 2022;13(1):49. DOI: 10.1007/s12672-022-00514-0.</mixed-citation></citation-alternatives></ref><ref id="cit51"><label>51</label><citation-alternatives><mixed-citation xml:lang="ru">Bárcena C., Stefanovic M., Tutusaus A., Martinez-Nieto G.A., Martinez L., García-Ruiz C. et al. Angiogenin secretion from hepatoma cells activates hepatic stellate cells to amplify a self-sustained cycle promoting liver cancer. Scientific Reports. 2015;5:7916. DOI: 10.1038/srep07916.</mixed-citation><mixed-citation xml:lang="en">Bárcena C., Stefanovic M., Tutusaus A., Martinez-Nieto G.A., Martinez L., García-Ruiz C. et al. Angiogenin secretion from hepatoma cells activates hepatic stellate cells to amplify a self-sustained cycle promoting liver cancer. Scientific Reports. 2015;5:7916. DOI: 10.1038/srep07916.</mixed-citation></citation-alternatives></ref><ref id="cit52"><label>52</label><citation-alternatives><mixed-citation xml:lang="ru">González L.O., Eiro N., Fraile M., Beridze N., Escaf A.R., Escaf S. et al. Prostate cancer tumor stroma: responsibility in tumor biology, diagnosis and treatment. Cancers (Basel). 2022;14(18):4412. DOI: 10.3390/cancers14184412.</mixed-citation><mixed-citation xml:lang="en">González L.O., Eiro N., Fraile M., Beridze N., Escaf A.R., Escaf S. et al. Prostate cancer tumor stroma: responsibility in tumor biology, diagnosis and treatment. Cancers (Basel). 2022;14(18):4412. DOI: 10.3390/cancers14184412.</mixed-citation></citation-alternatives></ref><ref id="cit53"><label>53</label><citation-alternatives><mixed-citation xml:lang="ru">Xu L., Yan Y., Xue X., Li C.G., Xu Z.Y., Chen H.Z. Angiogenin elevates the invasive potential of squamous cell lung carcinoma cells through epithelial-mesenchymal transition. Oncology Reports. 2016;36(5):2836–2842. DOI: 10.3892/or.2016.5107.</mixed-citation><mixed-citation xml:lang="en">Xu L., Yan Y., Xue X., Li C.G., Xu Z.Y., Chen H.Z. Angiogenin elevates the invasive potential of squamous cell lung carcinoma cells through epithelial-mesenchymal transition. Oncology Reports. 2016;36(5):2836–2842. DOI: 10.3892/or.2016.5107.</mixed-citation></citation-alternatives></ref><ref id="cit54"><label>54</label><citation-alternatives><mixed-citation xml:lang="ru">Li S., Shi X., Chen M., Xu N. Angiogenin promotes colorectal cancer metastasis via tiRNA production. International Journal of Cancer. 2019;145(5):1395–1407. DOI: 10.1002/ijc.32245.</mixed-citation><mixed-citation xml:lang="en">Li S., Shi X., Chen M., Xu N. Angiogenin promotes colorectal cancer metastasis via tiRNA production. International Journal of Cancer. 2019;145(5):1395–1407. DOI: 10.1002/ijc.32245.</mixed-citation></citation-alternatives></ref><ref id="cit55"><label>55</label><citation-alternatives><mixed-citation xml:lang="ru">Duran C.L., Borriello L., Karagiannis G.S., Entenberg D., Oktay M.H., Condeelis J.S. Targeting Tie2 in the tumor microenvironment: from angiogenesis to dissemination. Cancers (Basel). 2021;13(22):5730. DOI: 10.3390/cancers13225730.</mixed-citation><mixed-citation xml:lang="en">Duran C.L., Borriello L., Karagiannis G.S., Entenberg D., Oktay M.H., Condeelis J.S. Targeting Tie2 in the tumor microenvironment: from angiogenesis to dissemination. Cancers (Basel). 2021;13(22):5730. DOI: 10.3390/cancers13225730.</mixed-citation></citation-alternatives></ref><ref id="cit56"><label>56</label><citation-alternatives><mixed-citation xml:lang="ru">Li Y., Qu X., Cao B., Yang T., Bao Q., Yue H. et al. Selectively suppressing tumor angiogenesis for targeted breast cancer therapy by genetically engineered phage. Advanced Materials (Deerfield Beach, Fla.). 2020;32(29):e2001260. DOI: 10.1002/adma.202001260.</mixed-citation><mixed-citation xml:lang="en">Li Y., Qu X., Cao B., Yang T., Bao Q., Yue H. et al. Selectively suppressing tumor angiogenesis for targeted breast cancer therapy by genetically engineered phage. Advanced Materials (Deerfield Beach, Fla.). 2020;32(29):e2001260. DOI: 10.1002/adma.202001260.</mixed-citation></citation-alternatives></ref><ref id="cit57"><label>57</label><citation-alternatives><mixed-citation xml:lang="ru">Rani V., Prabhu A. Combining angiogenesis inhibitors with radiation: advances and challenges in cancer treatment. Current Pharmaceutical Design. 2021;27(7):919–931. DOI: 10.2 174/1381612826666201002145454.</mixed-citation><mixed-citation xml:lang="en">Rani V., Prabhu A. Combining angiogenesis inhibitors with radiation: advances and challenges in cancer treatment. Current Pharmaceutical Design. 2021;27(7):919–931. DOI: 10.2 174/1381612826666201002145454.</mixed-citation></citation-alternatives></ref><ref id="cit58"><label>58</label><citation-alternatives><mixed-citation xml:lang="ru">Li D., Weng S., Zhong C., Xu D., Yuan Y. Risk of second primary cancers among long-term survivors of breast cancer. Frontiers in Oncology. 2019;9:1426–1435. DOI:10.3389/fonc.2019.01426.</mixed-citation><mixed-citation xml:lang="en">Li D., Weng S., Zhong C., Xu D., Yuan Y. Risk of second primary cancers among long-term survivors of breast cancer. Frontiers in Oncology. 2019;9:1426–1435. DOI:10.3389/fonc.2019.01426.</mixed-citation></citation-alternatives></ref><ref id="cit59"><label>59</label><citation-alternatives><mixed-citation xml:lang="ru">Procaccio L., Damuzzo V., Di Sarra F., Russi A., Todino F., Dadduzio, V. et al. Safety and tolerability of anti-angiogenic protein kinase inhibitors and vascular-disrupting agents in cancer: focus on gastrointestinal malignancies. Drug Safety. 2019;42(2):159–179. DOI: 10.1007/s40264-018-0776-6.</mixed-citation><mixed-citation xml:lang="en">Procaccio L., Damuzzo V., Di Sarra F., Russi A., Todino F., Dadduzio, V. et al. Safety and tolerability of anti-angiogenic protein kinase inhibitors and vascular-disrupting agents in cancer: focus on gastrointestinal malignancies. Drug Safety. 2019;42(2):159–179. DOI: 10.1007/s40264-018-0776-6.</mixed-citation></citation-alternatives></ref><ref id="cit60"><label>60</label><citation-alternatives><mixed-citation xml:lang="ru">Guo S., Liang Y., Liu L., Chen Q., Wen Y., Liu S. et al. Increased angiogenin expression correlates with radiation resistance and predicts poor survival for patients with nasopharyngeal carcinoma. Frontiers in Pharmacology. 2021;12:627935. DOI: 10.3389/fphar.2021.627935.</mixed-citation><mixed-citation xml:lang="en">Guo S., Liang Y., Liu L., Chen Q., Wen Y., Liu S. et al. Increased angiogenin expression correlates with radiation resistance and predicts poor survival for patients with nasopharyngeal carcinoma. Frontiers in Pharmacology. 2021;12:627935. DOI: 10.3389/fphar.2021.627935.</mixed-citation></citation-alternatives></ref><ref id="cit61"><label>61</label><citation-alternatives><mixed-citation xml:lang="ru">Wang Y.N., Lee H.H., Chou C.K., Yang W.H., Wei Y., Chen C.T. et al. Angiogenin/ribonuclease 5 is an EGFR ligand and a serum biomarker for erlotinib sensitivity in pancreatic cancer. Cancer Cell. 2018;33(4):752–769. DOI: 10.1016/j.ccell.2018.02.012.</mixed-citation><mixed-citation xml:lang="en">Wang Y.N., Lee H.H., Chou C.K., Yang W.H., Wei Y., Chen C.T. et al. Angiogenin/ribonuclease 5 is an EGFR ligand and a serum biomarker for erlotinib sensitivity in pancreatic cancer. Cancer Cell. 2018;33(4):752–769. DOI: 10.1016/j.ccell.2018.02.012.</mixed-citation></citation-alternatives></ref></ref-list><fn-group><fn fn-type="conflict"><p>The authors declare that there are no conflicts of interest present.</p></fn></fn-group></back></article>
