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    Conference

    وصف الملف: application/pdf

    Relation: Современные проблемы машиностроения : сборник статей XVI Международной научно-технической конференции, г. Томск, 27 ноября – 1 декабря 2023 г.; Лаубган, К. В. Автоматизированный комплекс диагностики узлов трения технических систем / К. В. Лаубган, С. Е. Буханченко; Национальный исследовательский Томский политехнический университет, ИШНПТ // Современные проблемы машиностроения : сборник статей XVI Международной научно-технической конференции, г. Томск, 27 ноября – 1 декабря 2023 г. — Томск : Изд-во ТПУ, 2024. — С. 44-45.; http://earchive.tpu.ru/handle/11683/77452

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    Academic Journal
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    Academic Journal

    المصدر: Creative surgery and oncology; Том 14, № 3 (2024); 216-222 ; Креативная хирургия и онкология; Том 14, № 3 (2024); 216-222 ; 2076-3093 ; 2307-0501

    وصف الملف: application/pdf

    Relation: https://www.surgonco.ru/jour/article/view/982/612; Frost P. Unknown primary tumors: an example of accelerated (type 2) tumor progression. Basic Life Sci. 1991;57:233–7; discussion 237–40. DOI:10.1007/978-1-4684-5994-4_20; Varadhachary G. New strategies for carcinoma of unknown primary: the role of tissue-of-origin molecular profiling. Clin Cancer Res. 2013;19:4027–33. DOI:10.1158/1078-0432.CCR-12-3030; Куликов Е.П., Захаркина Т.В., Сашина Е.Л., Мануковская О.В., Редькин А.Н., Чевардов Н.И. и др. Поиск первичного очага при метастатическом поражении лимфоузлов шеи. Российский медико-биологический вестник им. академика И.П. Павлова. 2016;24(4):119–25. DOI:10.23888/PAVLOVJ20164119-125; Al Kadah B., Papaspyrou G., Linxweiler M., Schick B, Rübe C., Büchler B.S., et al. Cancer of unknown primary (CUP) of the head and neck: retrospective analysis of 81 patients. Eur Arch Otorhinolaryngol. 2017;274:2557–66. DOI:10.1007/s00405-017-4525-8; Рудык А.Н., Зинченко С.В., Хасанов Р.Ш., Хамидуллин Р.Г., Чернышева В.А. Определение локализации первичной опухоли у пациентов с метастазами в лимфатические узлы шеи без выявленного первичного очага. Онкохирургия. 2013;5(2):57–9.; Саприна О.А. Метастазы плоскоклеточного рака в лимфоузлы шеи без выявленного первичного очага. Опухоли головы и шеи. 2012;4:53–8. DOI:10.17650/2222-1468-2012-0-4-53-58; Farooq S., Khandavilli S., Dretzke J., Moore D., Nankivell P.C., Sharma N., et al. Transoral tongue base mucosectomy for the identification of the primary site in the work-up of cancers of unknown origin: Systematic review and meta-analysis. Oral Oncol. 2019;91:97–106. DOI:10.1016/j.oraloncology.2019.02.018; Mistry R., Walker A., Kim D., Ofo E. Transoral robotic surgery for the benefit of patients with head and neck cancer of unknown primary: our experience at St George’s University Hospital, London. Ann R Coll Surg Engl. 2020;102(6):442–50. DOI:10.1308/rc-sann.2020.0071; Al-Lami A., Gao C., Saddiq M., Al Zuhir N., Simo R., Arora A., et al. Reducing the unknowns: A systematic review & meta-analysis of the effectiveness of trans-oral surgical techniques in identifying head and neck primary cancer in carcinoma unknown primary. Oral Oncol. 2022;126:105–7. DOI:10.1016/j.oraloncology; Kubik M.W., Channir H.I., Rubek N., Kim S., Ferris R.L., von Buchwald C., et al. TORS Base-of-Tongue mucosectomy in human papilloma virus-negative carcinoma of unknown primary. Laryngoscope. 2021;131(1):78–81. DOI:10.1002/lary.28617; Liu X., Li D., Li N., Zhu X. Optimization of radiotherapy for neck carcinoma metastasis from unknown primary sites: a meta-analysis. Oncotarget. 2016;7(48):78736–46. DOI:10.18632/oncotarget.12852; Maghami E., Ismaila N., Alvarez A., Chernock R., Duvvuri U., Geiger J., et al. Diagnosis and management of squamous cell carcinoma of unknown primary in the head and neck: ASCO Guideline. J Clin Oncol. 2020;38(22):2570–96. DOI:10.1200/JCO.20.00275; Chen A.M., Farwell D.G., Lau D.H., Li B.Q., Luu Q., Donald P.J. Radiation therapy in the management of head-and-neck cancer of unknown primary origin: how does the addition of concurrent chemotherapy affect the therapeutic ratio? Int J Radiat Oncol Biol Phys. 2011;81(2):346–52. DOI:10.1016/j.ijrobp.2010.06.031; Ofo E., Spears H., Kim D., Duvvuri U. Transoral robotic surgery and unknown primary surgery. ORL J Otorhinolaryngol Relat Spec. 2018;80:148–55. DOI:10.1159/000490596; Civantos F.J., Vermorken J.B., Shah J.P., Rinaldo A., Suárez C., Kowalski L.P., et al. Metastatic squamous cell carcinoma to the cervical lymph nodes from an unknown primary cancer: management in the HPV era. Front Oncol. 2020;10:593164. DOI:10.3389/fonc.2020.593164; https://www.surgonco.ru/jour/article/view/982

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    Academic Journal

    المساهمون: This research was supported by Russian State Funded Budget Project of ICBFM SB RAS (reg. No. 121031300045-2)., Работа выполнена по государственному заданию в рамках бюджетной темы ИХБФМ СО РАН «Фундаментальные основы здоровьесбережения» № 121031300045-2.

    المصدر: Siberian journal of oncology; Том 23, № 4 (2024); 172-185 ; Сибирский онкологический журнал; Том 23, № 4 (2024); 172-185 ; 2312-3168 ; 1814-4861

    وصف الملف: application/pdf

    Relation: https://www.siboncoj.ru/jour/article/view/3203/1262; Abdelmaksoud N.M., El-Mahdy H.A., Ismail A., Elsakka E.G.E., El-Husseiny A.A., Khidr E.G., Ali E.M., Rashed M.H., El-Demerdash F.E., Doghish A.S. The role of miRNAs in the pathogenesis and therapeutic resistance of endometrial cancer: a spotlight on the convergence of signaling pathways. Pathol Res Pract. 2023; 244. doi:10.1016/j.prp.2023.154411.; Khan N.A., Elsori D., Rashid G., Tamanna S., Chakraborty A., Farooqi A., Kar A., Sambyal N., Kamal M.A. Unraveling the relationship between the renin-angiotensin system and endometrial cancer: a comprehensive review. Front Oncol. 2023; 13. doi:10.3389/fonc.2023.1235418.; Al-Kuraishy H.M., Al-Maiahy T.J., Al-Gareeb A.I., Alexiou A., Papadakis M., Saad H.M., Batiha G.E. The possible role furin and furin inhibitors in endometrial adenocarcinoma: A narrative review. Cancer Rep (Hoboken). 2024; 7(1). doi:10.1002/cnr2.1920.; Carmeliet P., Jain R.K. 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  6. 6
    Academic Journal

    المساهمون: The article has been prepared within the framework of R&D Topic No. 122041100210-4 Integrated Approach to the Diagnosis and Treatment of Respiratory Tuberculosis in Children and Adolescents., Статья подготовлена в рамках выполнения темы НИР № 122041100210–4: «Комплексный подход к диагностике и лечению туберкулеза органов дыхания у детей и подростков».

    المصدر: Tuberculosis and Lung Diseases; Том 102, № 5 (2024); 76-83 ; Туберкулез и болезни легких; Том 102, № 5 (2024); 76-83 ; 2542-1506 ; 2075-1230

    وصف الملف: application/pdf

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  7. 7
    Academic Journal

    المصدر: Research Focus International Scientific Journal, 3(2), (2024-02-11)

  8. 8
    Academic Journal

    المصدر: Agricultural Machinery and Technologies; Том 18, № 2 (2024); 4-10 ; Сельскохозяйственные машины и технологии; Том 18, № 2 (2024); 4-10 ; 2073-7599

    وصف الملف: application/pdf

    Relation: https://www.vimsmit.com/jour/article/view/574/517; Черноиванов В.И., Лялякин В.П. Организация и технология восстановления деталей машин. М.: ФНАЦ ВИМ. 2022. 284 с.; Огородник И.А., Гречихин Д.С. История и этапы развития ремонтного производства в сельском хозяйстве. Минск: Медисонт. 2018. 688 с.; Лялякин В.П. Восстановление деталей – важное направление в исследованиях ГОСНИТИ // Труды ГОСНИТИ. 2013. Т. 113. С. 233-244. EDN: RUABUL.; Лялякин В.П., Огородник И.А. История развития ремонтного производства // Технический сервис машин. 2019. N3(136). С. 170-186. EDN: BEUOKL.; Лялякин В.П., Аулов В.Ф. Инновационные технологии восстановления шеек коленчатых валов в связи с их старением в процессе эксплуатации // Ремонт, восстановление, модернизация. 2024. N4. С. 9-13. DOI:10.31044/1684-2561-2024-0-4-9-13.; Лялякин В.П., Кононогов А.М. Совершенствование организации восстановления деталей в СССР и за рубежом: Аналитический обзор. М.: Информагротех, 1991. 40 с.; Черноиванов В.И., Горячев С.А., Щеглов Е.В. и др. Формирование инфраструктуры инженерно-технологических услуг сельским товаропроизводителям. М.: Росинформагротех, 2010. 191 с. EDN: QUGJUN.; Лялякин В.П. История создания учебно-производственных центров при кафедрах сельскохозяйственных университетов // Технический сервис машин. 2022. N4(149). С. 149-157. DOI:10.22314/2618-8287-2022-60-4-149-157. EDN: WEBTNW.; Ежевский А.А., Федоренко В.Ф., Аронов Э.Л. Стратегия, эффективность и опыт производственно-технического обеспечения сельского хозяйства во второй половине XX века. М.: Росинформагротех, 2004. 339 с.; Черноиванов В.И., Лялякин В.П., Голубев И.Г. Организация и технология восстановления деталей машин. М.: Росинформагротех, 2016. 568 с. EDN: WETDSX.; https://www.vimsmit.com/jour/article/view/574

  9. 9
    Academic Journal

    المساهمون: The study was funded within the framework of the state task (no. AAAAA-A18-118030790008-7) of the Ministry of Health of the Russian Federation., Исследование профинансировано в рамках государственного задания (№ АААА-А18-118030790008-7) Министерства здравоохранения Российской Федерации.

    المصدر: Siberian journal of oncology; Том 22, № 6 (2023); 92-102 ; Сибирский онкологический журнал; Том 22, № 6 (2023); 92-102 ; 2312-3168 ; 1814-4861 ; 10.21294/1814-4861-2017-0-31-36

    وصف الملف: application/pdf

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Vaccines (Basel). 2022; 10(1): 78. doi:10.3390/vaccines10010078.; Yu-Ling L., Hua Z., Xiu-Bao R. Relationship of VEGF/VEGFR with immune and cancer cells: staggering or forward? Cancer Biol Med. 2016; 13(2): 206–14. doi:10.20892/j.issn.2095-3941.2015.0070.; Sun Y., Ai X., Shen S., Gu L., Lu S. Detection and correlation analysis of serum cytokines in non-small-cell lung cancer patients with bone and non-bone metastases. Patient Prefer Adherence. 2015; 9: 1165–9. doi:10.2147/PPA.S86605.; Chen W., Qin T., Liu S. Cytokines, breast cancer stem cells (BCSCs) and chemoresistance. Clin Trans Med. 2018; 7(1): 27. doi:10.1186/s40169-018-0205-6.; Jabeen S., Espinoza J.A., Torland L.A., Zucknick M., Kumar S., Haakensen V.D., Lüders T., Engebraaten O., Børresen-Dale A., Kyte J.A., Gromov P., Naume B., Kristensen V., Gromova I., Tekpli X. Noninvasive profiling of serum cytokines in breast cancer patients and clinicopathological characteristics. 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  10. 10
    Academic Journal

    المساهمون: The work was performed without external funding, Работа выполнена без спонсорской поддержки

    المصدر: Head and Neck Tumors (HNT); Том 13, № 4 (2023); 116-123 ; Опухоли головы и шеи; Том 13, № 4 (2023); 116-123 ; 2411-4634 ; 2222-1468 ; 10.17650/2222-1468-2023-13-4

    وصف الملف: application/pdf

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Cutaneous squamous cell carcinoma: estimated incidence of disease, nodal metastasis, and deaths from disease in the United States, 2012. J Am Acad Dermatol 2013;68(6):957–66. DOI:10.1016/j.jaad.2012.11.037; Mooney C.P., Martin R.C.W., Dirven R. et al. Sentinel node biopsy in 105 high-risk cutaneous SCCs of the head and neck: results of a multicenter prospective study. Ann Surg Oncol 2019;26(13):4481–8. DOI:10.1245/s10434-019-07865-z; Lewis K.G., Weinstock M.A. Trends in nonmelanoma skin cancer mortality rates in the United States, 1969 through 2000. J Invest Dermatol 2007;127(10):2323–7. DOI:10.1038/sj.jid.5700897; Janković I., Kovačević P., Janković D. et al. Lymphatic drainage map of the head and neck skin squamous cell carcinoma detected by sentinel lymph node biopsy. Eur Rev Med Pharmacol Sci2021;25(16):5228–34. DOI:10.26355/eurrev_202108_26536; Veness M.J., Porceddu S., Palme C.E., Morgan G.J. Cutaneous head and neck squamous cell carcinoma metastatic to parotid and cervical lymph nodes. Head Neck 2007;29(7):621–31. DOI:10.1002/hed.20576; Veness M.J., Palme C.E., Morgan G.J. High-risk cutaneous squamous cell carcinoma of the head and neck. Cancer 2006;106(11):2389–96. DOI:10.1002/cncr.21898; Thompson A.K., Kelley B.F., Prokop L.J. et al. Risk factors for cutaneous squamous cell carcinoma recurrence, metastasis, and disease-specific death: a systematic review and meta-analysis. JAMA Dermatol 2016;152(4):419–28. DOI:10.1001/jamadermatol.2015.4994; Schmults C.D., Karia P.S., Carter J.B. et al. Factors predictive of recurrence and death from cutaneous squamous cell carcinoma: a 10-year, single-institution cohort study. JAMA Dermatol 2013;149(5):541–7. DOI:10.1001/jamadermatol.2013.2139; O’Brien C.J., McNeil E.N., McMahon J.D. et al. Significance of clinical stage, extent of surgery, and pathologic findings in metastatic cutaneous squamous carcinoma of the parotid gland. 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Actas Dermosifiliogr 2012;103:567–78. DOI:10.1016/J.ADENGL.2012.08.004; Navarrete-Dechent C., Veness M.J., Droppelmann N., Uribe P. Highrisk cutaneous squamous cell carcinoma and the emerging role of sentinel lymph node biopsy : a literature review. J Am Acad Dermatol 2015;73(1):127–37. DOI:10.1016/j.jaad.2015.03.039; Brantsch K.D., Meisner C., Schonfisch B. et al. Analysis of risk factors determining prognosis of cutaneous squamous-cell carcinoma: a prospective study. Lancet Oncol 2008;9(8):713–20. DOI:10.1016/S1470-2045(08)70178-5; Veness M.J. Defining patients with high-risk cutaneous squamous cell carcinoma. Australas J Dermatol 2006;47(1):28–33. DOI:10.1111/j.1440-0960.2006.00218.x; Eigentler T.K., Leiter U., Hafner H.M. et al. Survival of patients with cutaneous squamous cell carcinoma: results of a prospective cohort study. J Invest Dermatol 2017;137(11):2309–15. DOI:10.1016/j.jid.2017.06.025; Кaria P.S., Morgan F.C., Ruiz E.S., Schmults C.D. Clinical and incidental perineural invasion of cutaneous squamous cell carcinoma : а systematic review and pooled analysis of outcomes data. JAMA Dermatol 2017;153(8):781–8. DOI:10.1001/jamadermatol.2017.1680; Moore B.A., Weber R.S., Prieto V. et al. Lymph node metastases from cutaneous squamous cell carcinoma of the head and neck Lary ngoscope2005;115(9):1561–7. DOI:10.1097/01.mlg.0000173202.56739.9f; Manyam B.V., Garsa A.A., Chin R.I. et al. A multi-institutional comparison of outcomes of immunosuppressed and immunocompetent patients treated with surgery and radiation therapy for cutaneous squamous cell carcinoma of the head and neck. Cancer 2017;123(11):2054–60. DOI:10.1002/cncr.30601; Oddone N., Morgan G.J., Palme C.E. et al. Metastatic cutaneous squamous cell carcinoma of the head and neck: the Immunosuppression, Treatment, Extranodal spread, and Margin status (ITEM) prognostic score to predict outcome and the need to improve survival. Cancer 2009;115(9):1883–91. DOI:10.1002/cncr.24208; Zavos G., Karidis N.P., Tsourouflis G., Bokos J. et al. Nonmelanoma skin cancer after renal transplantation: a single-center experience in 1736 transplantations. Int J Dermatol 2011;50(12):1496–500. DOI:10.1111/j.1365-4632.2011.04939.x; Renzi C., Caggiati A., Mannooranparampil T.J. et al. Sentinel lymph node biopsy for high risk cutaneous squamous cell carcinoma: case series and review of the literature. Eur J Surg Oncol 2007;33(3):364–9. DOI:10.1016/j.ejso.2006.10.017; Martorell-Calatayud A., Sanmartín Jimenez O., Cruz Mojarrieta J., Guillén Barona C. Cutaneous squamous cell carcinoma: defining the high-risk variant. Actas Dermosifiliogr 2013;104(5):367–79. DOI:10.1016/j.adengl.2011.12.012; Zwald F.O., Brown M. Skin cancer in solid organ transplant recipients: advances in therapy and management: part I. Epidemiology of skin cancer in solid organ transplant recipients. J Am Acad Dermatol 2011;65(2):253–61. DOI:10.1016/j.jaad.2010.11.062; Kwon S., Dong Z.M., Wu P.C. Sentinel lymph node biopsy for highrisk cutaneous squamous cell carcinoma : clinical experience and review of literature. World J Surg Oncol 2011;9:80. DOI:10.1186/1477-7819-9-80; American Joint Committee on Cancer. Cutaneous squamous cell carcinoma and other cutaneous carcinomas. 7 th ed. NY: Springer, 2010.; Stoff B., Salisbury C., Parker D., O’Reilly Zwald F. Dermatopathology of skin cancer in solid organ transplant recipients. Transplant Rev (Orlando) 2010:24(4):172–89. DOI:10.1016/j.trre.2010.05.002; Brougham N.D., Tan S.T. The incidence and risk factors of metastasis for cutaneous squamous cell carcinoma – implications on the T-classification system. J Surg Oncol 2014;110(7):876–82. DOI:10.1002/jso.23731; Tomaszewski J.M., Gavriel H., Link E. et al. Aggressive behavior of cutaneous squamous cell carcinoma in patients with chronic lymphocytic leukemia. Laryngoscope 2014;124(9):2043–8. DOI:10.1002/lary.24586; Martinez J.C., Otley C.C., Stasko T. et al. Defining the clinical course of metastatic skin cancer in organ transplant recipients: a mul ticenter collaborative study. Arch Dermatol 2003;139(3): 301–6. DOI:10.1001/archderm.139.3.301; Friedman N.R. Prognostic factors for local recurrence, metastases, and survival rates in squamous cell carcinoma of the skin, ear, and lip. J Am Acad Dermatol 1993;28(2 Pt. 1):281–2. DOI:10.1016/s0190-9622(08)81164-4; Peat B., Insull P., Ayers R. Risk stratification for metastasis from cutaneous squamous cell carcinoma of the head and neck. ANZ J Surg 2012;82(4):230–3. DOI:10.1111/j.1445-2197.2011.05994.x; Shen R., Zhang J., Zhang F. et al. Clinical characteristics and therapeutic analysis of 51 patients with Marjolin’s ulcers. Exp Ther Med 2015;10(4):1364–74. DOI:10.3892/etm.2015.2699; Breuninger H., Schaumburg-Lever G., Holzschuh J., Horny H.P. Desmoplastic squamous cell carcinoma of skin and vermilion surface: a highly malignant subtype of skin cancer. Cancer 1997;79(5):915–9. DOI:10.1002/(sici)1097-0142(19970301)79:53.0.co;2-a; Garcia-Pedrero J.M., Martinez-Camblor P., Diaz-Coto S. et al. Tumor programmed cell death ligand 1 expression correlates with nodal metastasis in patients with cutaneous squamous cell carcinoma of the head and neck. J Am Acad Dermatol 2017;77(3):527–33. DOI:10.1016/j.jaad.2017.05.047; Wong W.K., Morton R.P. Elective management of cervical and parotid lymph nodes in stage N0 cutaneous squamous cell carcinoma of the head and neck: a decision analysis. Eur Arch Otorhinolaryngol 2014;271(11):3011–9. DOI:10.1007/s00405-013-2857-6; Skulsky S.L., O’Sullivan B., McArdle O. et al. Review of high-risk features of cutaneous squamous cell carcinoma and discrepancies between the American Joint Committee on Cancer and NCCN Clinical Practice Guidelines In Oncology. Head Neck 2017;39(3):578–94. 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DOI:10.1111/1346-8138.12508; Forest V.I., Clark J.J., Veness M.J., Milross C. N1S3: a revised staging system for head and neck cutaneous squamous cell carcinoma with lymph node metastases: results of 2 Australian Cancer Centers. Cancer 2010;116(5):1298–304. DOI:10.1002/cncr.24855; Allen J.E., Stolle L.B. Utility of sentinel node biopsy in patients with high-risk cutaneous squamous cell carcinoma. Eur J Surg Oncol 2015;41(2):197–200. DOI:10.1016/j.ejso.2014.10.055; Ahadiat O., Higgins S., Sutton A. et al. SLNB in cutaneous SCC : A review of the current state of literature and the direction for the future. J Surg Oncol 2017;116:344–50.; Gore S.M., Shaw D., Martin R.C. et al. Prospective study of sentinel node biopsy for high-risk cutaneous squamous cell carcinoma of the head and neck. Head Neck 2016;38(Suppl. 1): E884–9. DOI:10.1002/hed.24120; Navarrete-Dechent C., Veness M.J., Droppelmann N., Uribe P. 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DOI:10.1016/j.jaad.2016.06.010; Yesensky J. Sentinel lymph node biopsy for cutaneous squamous cell carcinoma of the head and neck. 2023. Available at: https://clinicaltrials.gov/study/NCT05108090.; https://ogsh.abvpress.ru/jour/article/view/943

  11. 11
    Academic Journal

    المساهمون: The study was performed without external funding, Исследование проведено без спонсорской поддержки

    المصدر: Head and Neck Tumors (HNT); Том 14, № 2 (2024); 10-19 ; Опухоли головы и шеи; Том 14, № 2 (2024); 10-19 ; 2411-4634 ; 2222-1468 ; 10.17650/2222-1468-2024-14-2

    وصف الملف: application/pdf

    Relation: https://ogsh.abvpress.ru/jour/article/view/976/625; Durante C., Hegedüs L., Czarniecka A. et al. 2023 European Thyroid Association clinical practice guidelines for thyroid nodule management. Eur Thyroid J 2023;12(5):e230067. DOI:10.1530/ETJ-23-0067; Guth S., Theune U., Aberle J. et al. Very high prevalence of thyroid nodules detected by high frequency (13 MHz) ultrasound examination. Eur J Clin Invest 2009;39(8):699–706. DOI:10.1111/j.1365-2362.2009.02162.x; Мельниченко Г.А., Трошина Е.А., Платонова Н.М. И др. Йододефицитные заболевания щитовидной железы в Российской Федерации: современное состояние проблемы. Аналитический обзор публикаций и данных официальной государственной статистики (Росстат). Consilium medicum 2019;21(4):14–20. DOI:10.26442/20751753.2019.4.190337; Качко В.А., Семкина Г.В., Платонова Н.М. И др. Диагностика новообразований щитовидной железы. Эндокринная хирургия 2018;12(3):109–27. DOI:10.14341/serg9977; Бельцевич Д.Г., Мудунов А.М., Ванушко В.Э. И др. Дифференцированный рак щитовидной железы. Современная онкология 2020;22(4):30–44. DOI:10.26442/18151434.2020.4.200507; Бельцевич Д.Г., Ванушко В.Э., Мельниченко Г.А. И др. Клинические рекомендации. Диагностика и лечение (много)узлового зоба у взрослых. Эндокринная хирургия 2016;10(1):31–42. DOI:10.14341/serg201615-12; Чойнзонов Е.Л., Решетов И.В., Иванов С.А. И др. Проект клинических рекомендаций по диагностике и лечению дифференцированного рака щитовидной железы у взрослых пациентов. Эндокринная хирургия 2022;16(2):5–29. DOI:10.14341/serg12792; Абросимов А.Ю., Абдулхабирова Ф.М. Cистема классификации цитопатологии щитовидной железы Бетесда (пересмотр 2017 г.). Перспективы диагностики опухолей щитовидной железы и оптимизация тактики ведения пациентов. Новости клинической цитологии России 2017;21(4):23–31.; Абросимов А.Ю. Новая международная гистологическая классификация опухолей щитовидной железы. Архив патологии 2018;80(1):37–45.; Александров Ю.К., Шулутко А.М., Сенча А.Н. И др. Диагностическая тактика при узловых образованиях щитовидной железы на основе системы тирадс. Московский хирургический журнал 2015;3:24–6.; Александров Ю.К., Яновская Е.А., Шубин Л.Б., Дякив А.Д. Эффективность стратификационных систем в диагностике узловых заболеваний щитовидной железы. Проблемы эндокринологии 2019;65(4):216–26. DOI:10.14341/probl10087; Борсуков А.В. Анализ американской и европейской версии TI-RADS-2017: возможности воспроизводимости в кабинете ультразвуковой диагностики. Вестник новых медицинских технологий 2019;26(2):25–8.; Борсуков А.В. Комментарии и обсуждение Всемирных рекомендаций 2015 года по эластографии щитовидной железы. Эндокринная хирургия 2017;11(2):61–9. DOI:10.14341/serg2017261-69; Воробьев С.Л. Морфологическая диагностика заболеваний щитовидной железы. СПб.: Коста, 2014. 104 c.; Тимофеева Л.А., Тухбатуллин М.Г., Сенча А.Н. Ультразвуковая эластография в дифференциальной диагностике узловой патологии щитовидной железы. Кубанский научный медицинский вестник 2019;26(4):45–55. DOI:10.25207/1608-6228-2019-26-4-45-55; Тимофеева Л.А., Насруллаев М.Н., Алешина Д.Г. И др. Сравнительный анализ методик мультипараметрического ультразвукового исследования в дифференциальной диагностике рака щитовидной железы. Acta Medica Eurasica 2022;3:47–53. DOI:10.47026/2413-4864-2022-3-47-53; Фисенко Е.П., Сыч Ю.П., Ветшева Н.Н. К вопросу о классификации TI-RADS и стратификации признаков рака щитовидной железы по данным ультразвукового исследования. Медицинская визуализация 2017;5:29–38. DOI:10.24835/1607-0763-2017-5-29-38; Horvath E., Majlis S., Rossi R. et al. An ultrasonogram reporting system for thyroid nodules stratifying cancer risk for clinical management. J Clin Endocrinol Metab 2009;94(5):1748–51. DOI:10.1210/jc.2008-172; Mauri G., Hegedüs L., Bandula S. et al. European Thyroid Association and Cardiovascular and Interventional Radiological Society of Europe 2021 clinical practice guideline for the use of minimally invasive treatments in malignant thyroid lesions. Eur Thyroid J 2021;10(3):185–97. DOI:10.1159/000516469; Papini E., Monpeyssen H., Frasoldati A., Hegedüs L. et al. 2020 European thyroid association clinical practice guideline for the use of image-guided ablation in benign thyroid nodules. Eur Thyroid J 2020;9(4):172–85. DOI:10.1159/000508484; Howitt B., Chang S., Eszlinger M. et al. Fine-needle aspiration diagnoses of noninvasive follicular variant of papillary thyroid carcinoma. Am J Clin Pathol 2015;144(6):850–7. DOI:10.1309/AJCPEIE12POICULI; Russ G., Bonnema S.J., Ergogan M.F. et al. European Thyroid Association guidelines for ultrasound malignancy risk stratification of thyroid nodules in adults: the EU-TIRADS. Eur Thyroid J 2017;6(5):225–37. DOI:10.1159/000478927; Machała E., Sopinski J., Iavorska I. et al. Correlation of fine needle aspiration cytology of thyroid gland with histopatological results. Polski Przegl Chir 2018;90(6):6–13. DOI:10.5604/01.3001.0012.4712; Grani G., Zatelli M.C., Alfò M. et al. Real-world performance of the American Thyroid Association risk estimates in predicting 1-year differentiated thyroid cancer outcomes: a prospective multicenter study of 2000 patients. Thyroid 2021;31(2):264–71. DOI:10.1089/thy.2020.0272; Grani G., Zatelli M.C., Alfò M. et al. Contemporary thyroid nodule evaluation and management. J Clin Endocrinol Metab 2020;105(9):2869–83. DOI:10.1210/clinem/dgaa322; Lamartina L., Durante C., Lucisano G. et al. Are evidence-based guidelines reflected in clinical practice? An analysis of prospectively collected data of the Italian Thyroid Cancer Observatory. Thyroid 2017;27(12):1490–7. DOI:10.1089/thy.2017.0299; Mathonnet M., Cuerq A., Tresallet C. et al. What is the care pathway of patients who undergo thyroid surgery in France and its potential pitfalls? A national cohort. BMJ open 2017;7(4):e013589. DOI:10.1136/bmjopen-2016-013589; Ding M., Tang X., Cui D. et al. Clinical outcomes of ultrasoundguided radiofrequency ablation for the treatment of primary papillary thyroid microcarcinoma. Clin Radiol 2019;74(9):712–7. DOI:10.1016/j.crad.2019.05.012; Lim H.K., Cho S.J., Baek J.H. et al. US-guided radiofrequency ablation for low-risk papillary thyroid microcarcinoma: efficacy and safety in a large population. Korean J Radiol 2019;20(12):1653. DOI:10.3348/kjr.2019.0192; Rossi E.D., Adeniran A.J., Faquin W.C. Pitfalls in thyroid cytopathology. Surgical Pathol Clin 2019;12(4):865–81. DOI:10.1016/j.path.2019.08.001; Yang J., Schnadig V., Logrono R., Wasserman P.G. Fine‐needle aspiration of thyroid nodules: a study of 4703 patients with histologic and clinical correlations. Cancer 2007;111(5):306–15. DOI:10.1002/cncr.22955; Trimboli P., Treglia G., Guidobaldi L. et al. Detection rate of FNA cytology in medullary thyroid carcinoma: a meta-analysis. Clin Endocrinol (Oxf) 2015;82(2):280–5. DOI:10.1111/cen.12563; https://ogsh.abvpress.ru/jour/article/view/976

  12. 12
    Academic Journal

    المؤلفون: А. V. Sheiko, А. В. Шейко

    المصدر: Malignant tumours; Том 14, № 1 (2024); 47-55 ; Злокачественные опухоли; Том 14, № 1 (2024); 47-55 ; 2587-6813 ; 2224-5057

    وصف الملف: application/pdf

    Relation: https://www.malignanttumors.org/jour/article/view/1285/915; von der Grün J.M., Tahtali A., Ghanaati S., et al. Diagnostic and treatment modalities for patients with cervical lymph node metastases of unknown primary site - current status and challenges. Radiat Oncol 2017;12(1):82 https://doi.org/10.1186/s13014-017-0817-9; Balk M., Rupp R., Mantsopoulos K., et al. Factors Influencing the Outcome of Head and Neck Cancer of Unknown Primary (HNCUP). J Clin Med 2022;11(10):2689 https://doi.org/10.3390/jcm11102689; Olivier T., Fernandez E., Labidi-Galy I., et al. Redefining cancer of unknown primary: Is precision medicine really shifting the paradigm? Cancer Treat Rev 2021;97:102204. https://doi.org/10.1016/j.ctrv.2021.102204; Losa F., Fernández I., Etxaniz O., et al. SEOM-GECOD clinical guideline for unknown primary cancer (2021). Clin Transl Oncol 2022;24(4):681–692. https://doi.org/10.1007/s12094-022-02806-x; Zarkavelis G., Mauri D., Pentheroudakis G. How I treat cancers of unknown primary. ESMO Open 2019;4(Suppl 2):e000502. https://doi.org/10.1136/esmoopen-2019-000502; Maghami E., Ismaila N., Alvarez A., et al. Diagnosis and Management of Squamous Cell Carcinoma of Unknown Primary in the Head and Neck: ASCO Guideline. J Clin Oncol 2020;38(22):2570–2596. https://doi.org/10.1200/JCO.20.00275; Krämer A., Bochtler T., Pauli C., et al. Cancer of unknown primary: ESMO Clinical Practice Guideline for diagnosis, treatment and follow-up. Ann Oncol 2023;34(3):228–246. https://doi.org/10.1016/j.annonc.2022.11.013; Nissan E., Amit U., Baron L., et al. The usefulness of [18F]FDG-PET/CT in detecting and managing cancers with unknown primary site depends on histological subtype. Sci Rep 2021;11(1):17732 https://doi.org/10.1038/s41598-02196451-z; Ye W., Arnaud E.H., Langerman A., et al. Diagnostic approaches to carcinoma of unknown primary of the head and neck. Eur J Cancer Care (Engl) 2021;30(6):e13459. https://doi.org/10.1111/ecc.13459; Podeur P., Mancini J., Delgrande J., et al. Role of Tonsillectomy in the Management of Carcinomas of Unknown Primary of the Head and Neck: A Retrospective Study Based on p16 Analysis. Front Oncol 2020;10:594168. https://doi.org/10.3389/fonc.2020.594168; Al-Lami A., Gao C., Saddiq M., et al. Reducing the unknowns: A systematic review & meta-analysis of the effectiveness of trans-oral surgical techniques in identifying head and neck primary cancer in carcinoma unknown primary. Oral Oncol 2022;126:105748. https://doi.org/10.1016/j.oraloncology.2022.105748; Strojan P., Kokalj M., Zadnik V., et al. Squamous cell carcinoma of unknown primary tumor metastatic to neck nodes: role of elective irradiation. Eur Arch Otorhinolaryngol 2016;273(12):4561–4569. https://doi.org/10.1007/s00405-0164172-5; Berzenji D., Monserez D.A., Verduijn G.M., et al. Treatment of head and neck carcinoma of unknown primary: Cracking a nut with a sledgehammer? Laryngoscope Investig Otolaryngol 2021;6(2):211–218. https://doi.org/10.1002/lio2.539; Platek A., Mix M., Chowdhry V., et al. Evaluation of radiation treatment volumes for unknown primaries of the head and neck in the era of FDG PET. PLoS One 2020;15(4):e0231042. https://doi.org/10.1371/journal.pone.0231042; Kim D.Y., Heo D.S., Keam B., et al. Failure patterns of cervical lymph nodes in metastases of unknown origin according to target volume. Radiat Oncol J 2020;38(1):18–25. https://doi.org/10.3857/roj.2020.00108; Li R., Liao K., Wei Z., et al. The prognostic role of radiotherapy and radiotherapy target in cervical lymph node metastatic squamous cell carcinoma with unknown primary: a retrospective study. J Cancer Res Clin Oncol 2022;148(6):1437–1445. https://doi.org/10.1007/s00432-021-03724-1; Ghatasheh H., Huang S.H., Su J., et al. Evaluation of risk-tailored individualized selection of radiation therapy target volume for head and neck carcinoma of unknown primary. Radiother Oncol 2022;175:56-64. https://doi.org/10.1016/j.radonc.2022.07.016; Pala M., Novakova P., Pechacova Z., et al. Long-term results of radio(chemo)therapy in metastatic carcinoma to cervical lymph nodes from an unknown primary. Adult Comorbidity Evaluation 27 score as a predictor of survival. Strahlenther Onkol 2023;199(2):149–159. https://doi.org/10.1007/s00066-022-01983-6; Tiong A., Rischin D., Young RJ., et al. Unilateral radiotherapy treatment for p16/human papillomavirus-positive squamous cell carcinoma of unknown primary in the head and neck. Laryngoscope 2018;128(9):2076–2083. https://doi.org/10.1002/lary.27131; Zhou M.J., van Zante A., Lazar A.A., et al. Squamous cell carcinoma of unknown primary of the head and neck: Favorable prognostic factors comparable to those in oropharyngeal cancer. Head Neck 2018;40(5):904–916. https://doi.org/10.1002/hed.25028; Hung Y.H., Liu S.A., Wang C.C., et al. Treatment outcomes of unknown primary squamous cell carcinoma of the head and neck. PLoS One 2018;13(10):e0205365. https://doi.org/10.1371/journal.pone.0205365; Cho W.K., Roh J.L., Cho K. J, et al. Predictors of survival and recurrence after primary surgery for cervical metastasis of unknown primary. J Cancer Res Clin Oncol 2020;146(4):925–933. https://doi.org/10.1007/s00432-019-03111-x; Binder C., Matthes K.L., Korol D., et al. Cancer of unknown primary-Epidemiological trends and relevance of comprehensive genomic profiling. Cancer Med 2018;7(9):4814–4824. https://doi.org/10.1002/cam4.1689; Pinkiewicz M., Dorobisz K., Zatoński T. A Systematic Review of Cancer of Unknown Primary in the Head and Neck Region. Cancer Manag Res 2021;13:7235-7241. https://doi.org/10.2147/CMAR.S319179.; https://www.malignanttumors.org/jour/article/view/1285

  13. 13
  14. 14
    Conference

    المؤلفون: Мельников, К. Ю.

    المساهمون: Троян, Анна Алексеевна

    وصف الملف: application/pdf

    Relation: Химия и химическая технология в XXI веке : материалы XXIV Международной научно-практической конференции студентов и молодых ученых имени выдающихся химиков Л. П. Кулёва и Н. М. Кижнера, посвященной 85-летию со дня рождения профессора А. В. Кравцова, Томск, 15-19 мая 2023 г. Т. 2; Мельников, К. Ю. Моделирование узла каталитического риформинга бензиновой фракции / К. Ю. Мельников; науч. рук. А. А. Троян // Химия и химическая технология в XXI веке : материалы XXIV Международной научно-практической конференции студентов и молодых ученых имени выдающихся химиков Л. П. Кулёва и Н. М. Кижнера, посвященной 85-летию со дня рождения профессора А. В. Кравцова, Томск, 15-19 мая 2023 г. : в 2 т. — Томск : Изд-во ТПУ, 2023. — Т. 2. — [С. 88-89].; http://earchive.tpu.ru/handle/11683/76855

  15. 15
    Conference

    وصف الملف: application/pdf

    Relation: Ресурсосберегающие технологии в контроле, управлении качеством и безопасности : сборник научных трудов XI Международной конференции школьников, студентов, аспирантов, молодых ученых "Ресурсоэффективные системы в управлении и контроле: взгляд в будущее", 08-10 ноября 2022 г., г. Томск; Желякова, П. О. Исследование сканирующего преобразователя для контроля геометрических параметров протяженных изделий / П. О. Желякова // Ресурсосберегающие технологии в контроле, управлении качеством и безопасности : сборник научных трудов XI Международной конференции школьников, студентов, аспирантов, молодых ученых "Ресурсоэффективные системы в управлении и контроле: взгляд в будущее", 08-10 ноября 2022 г., г. Томск. — Томск : Изд-во ТПУ, 2023. — [С. 76-80].; http://earchive.tpu.ru/handle/11683/74660

  16. 16
    Conference

    وصف الملف: application/pdf

    Relation: Техническое регулирование в едином экономическом пространстве : сборник статей X Всероссийской научно-практической конференции с международным участием. — Екатеринбург, 2023; Варганов, И. А. Модель профессиональной переподготовки слесаря по ремонту автомобилей / И. А. Варганов, С. Н. Копылов // Техническое регулирование в едином экономическом пространстве : сборник статей X Всероссийской научно-практической конференции с международным участием, 18 мая 2023 г., Екатеринбург / Рос. гос. проф.-пед. ун-т. - Екатеринбург : РГППУ, 2023. - С. 206-210.; https://elar.rsvpu.ru/handle/123456789/43053

  17. 17
    Academic Journal
  18. 18
  19. 19
    Academic Journal

    المؤلفون: ГЕЛДЫШЕВ, Андрей

    المساهمون: ПЕРЕСЕЛКОВ, Александр

    وصف الملف: application/pdf

    Relation: ГЕЛДЫШЕВ, Андрей. Анализ работы конденсационно-охладительного узла в условиях повышенной температуры наружного воздуха. In: Conferinţa tehnico-ştiinţifică a studenţilor, masteranzilor şi doctoranzilor, Universitatea Tehnică a Moldovei, 5-7 aprilie 2023. Chișinău, 2023, vol. 1, pp. 84-88. ISBN 978-9975-45-956-3. ISBN 978-9975-45-957-0 (Vol.1).; http://repository.utm.md/handle/5014/23721

  20. 20
    Academic Journal

    المصدر: Agricultural Machinery and Technologies; Том 17, № 2 (2023); 61-68 ; Сельскохозяйственные машины и технологии; Том 17, № 2 (2023); 61-68 ; 2073-7599

    وصف الملف: application/pdf

    Relation: https://www.vimsmit.com/jour/article/view/518/471; Gabitov I., Negovora A., Nigmatullin S., et al. Development of a method for diagnosing injectors of diesel engines. Komunikacie. 2021. Vol. 23. N1. B46-B57.; Костомахин М.Н. Оценка режимов работы сельскохозяйственной техники // Сельскохозяйственные машины и технологии. 2020. Т. 14. N4. С. 78-83.; Kostomakhin M.N., Kataev Y.V., Petrishchev N.A., et al. System for Remote Monitoring of Tractors and Detection of Their Incorrect Operation. Russian Engineering Research. 2022. Vol. 42. N4. 360-364.; Pastukhov A., Timashov E., Parnikova T., Kravchenko I. Thermometric diagnostics of elements of reaper drive for sunflower harvesting. Engineering for Rural Development. 2021. 20. 43-48.; Ерохин М.Н., Дорохов А.С., Катаев Ю.В. Интеллектуальная система диагностирования параметров технического состояния сельскохозяйственной техники // Агроинженерия. 2021. N2(102). С. 45-50.; Костомахин М.Н., Петрищев Н.А., Саяпин А.С. Система дистанционного контроля технического состояния на примере коробки перемены передач трактора «Кировец» // Сельскохозяйственные машины и технологии. 2021. Т. 15. N3. С. 22-27.; Федоренко В.Ф., Таркивский В.Е. Цифровые беспровод­ные технологии для оценки показателей сельскохозяйственной техники // Сельскохозяйственные машины и технологии. 2020. Т. 14. N1. С. 10-15.; Pestryakov E.V., Sayapin A.S., Kostomakhin M.N., Petrishchev N.A. Analysis of the Technical Condition of Agricultural Machinery Using Neural Networks. Lecture Notes on Data Engineering and Communications Technologies. 2022. Vol. 121. 92-101.; Lazar V.V., Skorokhodov D.M., Kazantsev S.P., et al. Quality assessment of spare parts for the final drive reduction gear used in the MTZ-82.1 tractors. Journal of Physics: Conference Series, Krasnoyarsk, 2020. 42058.; Szurgacz D., Zhironkin S., Vöth S., Pokorny J., Spea­ring A.J.S., Cehlаr M., Stempniak M., Sobik L. Thermal Imaging Study to Determine the Operational Condition of a Conveyor Belt Drive System Structure. Energies. 2021. N14. 3258.; Stempniak M., Zhironkin V., Trzop K., Szurgacz D. Preliminary research to determine the thermal condition of the belt conveyor’s drive unit in an underground hard coal mine. IOP Conference Series: Earth and Environmental Science. 2021. 684. 012010.; Jakubek B., Grochalski K., Rukat W., Sokol H. Thermovision Measurements Of Rolling Bearings. Measurement. 2021. 110512.; https://www.vimsmit.com/jour/article/view/518