• Lee SB, Oh JH, Park JH, Choi SP, Wee JH. Differences in youngest-old, middle-old, and oldest-old patients who visit the emergency department. Clin Exp Emerg Med. 2018;5(4):249–55.

    Article 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Yoshida S, Shiraishi R, Nakayama Y, Taira Y. Can nutrition contribute to a reduction in sarcopenia, frailty, and comorbidities in a super-aged society? Nutrients 2023;15(13).

  • Escourrou E, Laurent S, Leroux J, Oustric S, Gardette V. The shift from old age to very old age: an analysis of the perception of aging among older people. BMC Prim Care 2022;23(1).

  • Rhee H, Jang KS, Park JM, Kang JS, Hwang NK, Kim IY, Song SH, Seong EY, Lee DW, Lee SB et al. Short- and long-term mortality rates of elderly acute kidney injury patients who underwent continuous renal replacement therapy. PLoS ONE 2016;11(11).

  • Medina-Liabres KRP, Kim S. Continuous renal replacement therapy in elderly with acute kidney injury. Korean J Intern Med. 2020;35(2):284–94.

    Article 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Kim JH, Eum SH, Kim HW, Min JW, Koh ES, Ko EJ, Kim HD, Chung BH, Shin SJ, Yang CW, et al. Mortality of elderly patients with acute kidney injury undergoing continuous renal replacement therapy: is age a risk factor? Kidney Res Clin Prac. 2024;43(4):505–17.

    Article 

    Google Scholar
     

  • Liu S, Cheng QL, Zhang XY, Ma Q, Liu YL, Pan R, Cai XY. Application of continuous renal replacement therapy for acute kidney injury in elderly patients. Int J Clin Exp Med. 2015;8(6):9973–8.

    PubMed 
    PubMed Central 

    Google Scholar
     

  • Conroy M, O’Flynn J, Marsh B. Mortality and long-term Dialysis requirement among elderly continuous renal replacement therapy patients in a tertiary referral intensive care unit. J Intensive Care Soc. 2019;20(2):138–43.

    Article 
    PubMed 

    Google Scholar
     

  • Charlson ME, Pompei P, Ales KL, Mackenzie CR. A new method of classifying prognostic co-morbidity in longitudinal-studies – development and validation. J Chron Dis. 1987;40(5):373–83.

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Park S, Lee S, Jo HA, Han K, Kim Y, An JN, Joo KW, Lim CS, Kim YS, Kim H, et al. Epidemiology of continuous renal replacement therapy in korea: results from the national health insurance service claims database from 2005 to 2016. Kidney Res Clin Pract. 2018;37(2):119–29.

    Article 
    PubMed 
    PubMed Central 

    Google Scholar
     

  • Lee HJ, Son YJ. Factors associated with in-hospital mortality after continuous renal replacement therapy for critically ill patients: a systematic review and meta-analysis. Int J Env Res Pub He. 2020;17(23).

  • Iwagami M, Yasunaga H, Noiri E, Horiguchi H, Fushimi K, Matsubara T, Yahagi N, Nangaku M, Doi K. Current state of continuous renal replacement therapy for acute kidney injury in Japanese intensive care units in 2011: analysis of a National administrative database. Nephrol Dial Transpl. 2015;30(6):988–95.

    Article 

    Google Scholar
     

  • Uchino S, Bellomo R, Morimatsu H, Morgera S, Schetz M, Tan I, Bouman C, Macedo E, Gibney N, Tolwani A, et al. Continuous renal replacement therapy: a worldwide practice survey. The beginning and ending supportive therapy for the kidney (B.E.S.T. kidney) investigators. Intensive Care Med. 2007;33(9):1563–70.

    Article 
    PubMed 

    Google Scholar
     

  • Hansrivijit P, Yarlagadda K, Puthenpura MM, Ghahramani N, Thongprayoon C, Vaitla P, Cheungpasitporn W. A meta-analysis of clinical predictors for renal recovery and overall mortality in acute kidney injury requiring continuous renal replacement therapy. J Crit Care. 2020;60:13–22.

    Article 
    PubMed 

    Google Scholar
     

  • Kee YK, Kim D, Kim SJ, Kang DH, Choi KB, Oh HJ, Ryu DR. Factors associated with early mortality in critically ill patients following the initiation of continuous renal replacement therapy. J Clin Med. 2018;7(10).

  • Aduen J, Bernstein WK, Khastgir T, Miller J, Kerzner R, Bhatiani A, Lustgarten J, Bassin AS, Davison L, Chernow B. The use and clinical importance of a substrate-specific electrode for rapid determination of blood lactate concentrations. JAMA. 1994;272(21):1678–85.

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Bakker J, Gris P, Coffernils M, Kahn RJ, Vincent JL. Serial blood lactate levels can predict the development of multiple organ failure following septic shock. Am J Surg. 1996;171(2):221–6.

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Kim SG, Lee J, Yun D, Kang MW, Kim YC, Kim DK, Oh KH, Joo KW, Kim YS, Han SS. Hyperlactatemia is a predictor of mortality in patients undergoing continuous renal replacement therapy for acute kidney injury. BMC Nephrol. 2023;24(1).

  • Guyette F, Suffoletto B, Castillo JL, Quintero J, Callaway C, Puyana JC. Prehospital serum lactate as a predictor of outcomes in trauma patients: a retrospective observational study. J Trauma. 2011;70(4):782–6.

    CAS 
    PubMed 

    Google Scholar
     

  • Jeng JC, Jablonski K, Bridgeman A, Jordan MH. Serum lactate, not base deficit, rapidly predicts survival after major burns. Burns. 2002;28(2):161–6.

    Article 
    PubMed 

    Google Scholar
     

  • Velickovic J, Palibrk I, Milicic B, Velickovic D, Jovanovic B, Rakic G, Petrovic M, Bumbasirevic V. The association of early postoperative lactate levels with morbidity after elective major abdominal surgery. Bosnian J Basic Med. 2019;19(1):72–80.

    Article 
    CAS 

    Google Scholar
     

  • Cigarran S, Barril G, Cirugeda A, Bernis C, Aguilera A, Sanz P, Herraez I, Alegre L, Selgas R. Hypoalbuminemia is also a marker of fluid excess determined by bioelectrical impedance parameters in dialysis patients. Ther Apher Dial. 2007;11(2):114–20.

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Fanali G, di Masi A, Trezza V, Marino M, Fasano M, Ascenzi P. Human serum albumin: from bench to bedside. Mol Aspects Med. 2012;33(3):209–90.

    Article 
    CAS 
    PubMed 

    Google Scholar
     

  • Xu JY, Chen QH, Xie JF, Pan C, Liu SQ, Huang LW, Yang CS, Liu L, Huang YZ, Guo FM et al. Comparison of the effects of albumin and crystalloid on mortality in adult patients with severe sepsis and septic shock: a meta-analysis of randomized clinical trials. Crit Care 2014;18(6).

  • Kato T, Yaku H, Morimoto T, Inuzuka Y, Tamaki Y, Ozasa N, Yamamoto E, Yoshikawa Y, Kitai T, Taniguchi R et al. Association of an increase in serum albumin levels with positive 1-year outcomes in acute decompensated heart failure: a cohort study. PLoS ONE 2020;15(12).

  • González-Pacheco H, Amezcua-Guerra LM, Sandoval J, Martínez-Sánchez C, Ortiz-León XA, Peña-Cabral MA, Bojalil R. Prognostic implications of serum albumin levels in patients with acute coronary syndromes. Am J Cardiol. 2017;119(7):951–8.

    Article 
    PubMed 

    Google Scholar
     

  • Wang XQ, Chu H, Zhou HF. Association between hypoalbuminemia and mortality in patients undergoing continuous renal replacement therapy: a systematic review and meta-analysis. PLoS ONE 2023;18(3).

  • Muzaffar SN, Patnaik R, Siddiqui SS, Azim A. Impact of hypoalbuminemia on mortality in critically ill patients requiring continuous renal replacement therapy. J Crit Care 2022;69.

  • Sheng S, Zhang YH, Ma HK, Huang Y. Albumin levels predict mortality in sepsis patients with acute kidney injury undergoing continuous renal replacement therapy: a secondary analysis based on a retrospective cohort study. BMC Nephrol. 2022;23(1).

  • Zheng LJ, Jiang WM, Pan LL, Pan JY. Reduced serum albumin as a risk factor for poor prognosis in critically ill patients receiving renal replacement therapy. BMC Nephrol. 2021;22(1).

  • Moon JJ, Kim Y, Kim DK, Joo KW, Kim YS, Han SS. Association of hypoalbuminemia with short-term and long-term mortality in patients undergoing continuous renal replacement therapy. Kidney Res Clin Prac. 2020;39(1):47–53.

    Article 

    Google Scholar
     

  • Sung J, Bochicchio GV, Joshi M, Bochicchio K, Costas A, Tracy K, Scalea TM. Admission serum albumin is predicitve of outcome in critically ill trauma patients. Am Surgeon. 2004;70(12):1099–102.

    Article 
    PubMed 

    Google Scholar
     

  • Nowak MM, Niemczyk M, Golebiewski S, Paczek L. Impact of body mass index on all-cause mortality in adults: a systematic review and meta-analysis. J Clin Med. 2024;13(8).

  • Kim H, Kim H, Lee M, Cha MU, Nam KH, An SY, Jung SY, Jhee JH, Park S, Yun HR et al. The impact of disease severity on paradoxical association between body mass index and mortality in patients with acute kidney injury undergoing continuous renal replacement therapy. BMC Nephrol. 2018;19.

  • Kim H, Kim J, Seo C, Lee M, Cha MU, Jung SY, Jhee JH, Park S, Yun HR, Kee YK, et al. Body mass index is inversely associated with mortality in patients with acute kidney injury undergoing continuous renal replacement therapy. Kidney Res Clin Prac. 2017;36(1):39–47.

    Article 

    Google Scholar
     

  • Morales F, Montserrat-de la Paz S, Leon MJ, Rivero-Pino F. Effects of malnutrition on the immune system and infection and the role of nutritional strategies regarding improvements in children’s health status: a literature review. Nutrients 2024;16(1).

  • Fielding RA, Vellas B, Evans WJ, Bhasin S, Morley JE, Newman AB, van Kan GA, Andrieu S, Bauer J, Breuille D, et al. Sarcopenia: an undiagnosed condition in older Adults. Current consensus definition: prevalence, etiology, and consequences. international working group on sarcopenia. J Am Med Dir Assoc. 2011;12(4):249–56.

    Article 
    PubMed 

    Google Scholar
     

  • Jung J, Lee J, Lim JH, Kim YC, Ban TH, Park WY, Kim KM, Kim K, Lee SW, Shin SJ et al. The effects of muscle mass and quality on mortality of patients with acute kidney injury requiring continuous renal replacement therapy. Sci Rep-UK 2023;13(1).

  • Vallet H, Guidet B, Boumendil A, De Lange DW, Leaver S, Szczeklik W, Jung C, Sviri S, Beil M, Flaatten H. The impact of age-related syndromes on ICU process and outcomes in very old patients. Ann Intensive Care 2023;13(1).