Prescribing Peritoneal Dialysis for Elderly Patients Starting Peritoneal Dialysis
Abstract
:1. Introduction
2. Peritoneal Dialysis Treatment Options for the Older Person
3. Residual Kidney Function
4. Estimating Delivered Dialysis Dose
5. How Much Dialysis Clearance Do Patients Require?
6. Volume Control in Peritoneal Dialysis Patients
7. Starting Elderly Frail Patients with Residual Kidney Function on Peritoneal Dialysis
8. Conclusions
Funding
Data Availability Statement
Conflicts of Interest
References
- Francis, A.; Harhay, M.N.; Ong, A.C.M.; Tummalapalli, S.L.; Ortiz, A.; Fogo, A.B.; Fliser, D.; Roy-Chaudhury, P.; Fontana, M.; Nangaku, M.; et al. American Society of Nephrology; European Renal Association; International Society of Nephrology. Chronic kidney disease and the global public health agenda: An international consensus. Nat. Rev. Nephrol. 2024, 20, 473–485. [Google Scholar] [CrossRef]
- Ruiz-Ortega, M.; Rayego-Mateos, S.; Lamas, S.; Ortiz, A.; Rodrigues-Diez, R.R. Targeting the progression of chronic kidney disease. Nat. Rev. Nephrol. 2020, 16, 269–288. [Google Scholar]
- Mann, J.F.E.; Rossing, P.; Bakris, G.; Belmar, N.; Bosch-Traberg, H.; Busch, R.; Charytan, D.M.; Hadjadj, S.; Gillard, P.; Górriz, J.L.; et al. Effects of semaglutide with and without concomitant SGLT2 inhibitor use in participants with type 2 diabetes and chronic kidney disease in the FLOW trial. Nat. Med. 2024, 30, 2849–2856. [Google Scholar] [PubMed]
- Davies, S. The future of peritoneal dialysis. Clin. Kidney J. 2024, 17 (Suppl. S2), 9–18. [Google Scholar] [PubMed]
- Sahithya, V.; Sivanantham, P.; Anandraj, J.; Parameswaran, S.; Sekhar Kar, S. Economic cost of hemodialysis and peritoneal dialysis under public-private partnership in a public tertiary care centre of Puducherry, India. Expert. Rev. Pharmacoecon. Outcomes Res. 2024, 25, 415–421. [Google Scholar]
- National Institute for Health and Care Excellence (NICE) Guideline Renal Replacement Therapy and Conservative Management (NG107). Available online: https://www.nice.org.uk/guidance/ng107 (accessed on 28 February 2025).
- Gokal, R.; Jakubowski, C.; King, J.; Hunt, L.; Bogle, S.; Baillod, R.; Marsh, F.; Ogg, C.; Oliver, D.; Ward, M.; et al. Outcome in patients on continuous ambulatory peritoneal dialysis and haemodialysis: 4-year analysis of a prospective multicentre study. Lancet 1987, 2, 1105–1109. [Google Scholar]
- Giuliani, A.; Karopadi, A.N.; Prieto-Velasco, M.; Manani, S.M.; Crepaldi, C.; Ronco, C. Worldwide Experiences with Assisted Peritoneal Dialysis. Perit. Dial. Int. 2017, 37, 503–508. [Google Scholar]
- Reyskens, M.; Abrahams, A.C.; François, K.; van Eck van der Sluijs, A. Assisted peritoneal dialysis in Europe: A strategy to increase and maintain home dialysis. Clin. Kidney J. 2024, 17 (Suppl. S1), i34–i43. [Google Scholar]
- Neri, L.; Viglino, G.; Vizzardi, V.; Porreca, S.; Mastropaolo, C.; Marinangeli, G.; Cabiddu, G. Peritoneal Dialysis in Italy: The 8th GPDP-SIN census 2022. G. Ital. Nefrol. 2024, 41, 2024-vol1. [Google Scholar] [PubMed]
- Wendy Ye, W.Q.; Oliver, M.J. Time-Varying Effects of Nurse and Family-Assisted Peritoneal Dialysis. Kidney360 2024, 5, 1408–1409. [Google Scholar]
- Neri, L.; Di Liberato, L.; Alfano, G.; Allegrucci, V.; Appio, N.; Bussi, C.; Cannarile, D.C.; De Palma, I.; Di Stante, S.; Pacifico, R.; et al. Precision Medicine in Peritoneal Dialysis: An Expert Opinion on the Application of the Sharesource Platform for the Remote Management of Patients. J. Pers. Med. 2024, 14, 807. [Google Scholar] [CrossRef] [PubMed]
- Augustyńska, J.; Lichodziejewska-Niemierko, M.; Naumnik, B.; Seweryn, M.; Leszczyńska, A.; Gellert, R.; Lindholm, B.; Lange, J.; Kopel, J. Automated Peritoneal Dialysis With Remote Patient Monitoring: Clinical Effects and Economic Consequences for Poland. Value Health Reg. Issues 2024, 40, 53–62. [Google Scholar]
- Neri, L.; Caria, S.; Cannas, K.; Scarpioni, R.; Manini, A.; Cadoni, C.; Malandra, R.; Ullo, I.; Rombolà, G.; Borzumati, M.; et al. Peritoneal videodialysis: First Italian audit. G. Ital. Nefrol. 2022, 39, 2022-vol4. [Google Scholar] [PubMed]
- Ali, H.; Mohamed, M.M.; Fülöp, T.; Hamer, R. Outcomes of Remote Patient Monitoring in Peritoneal Dialysis: A Meta-Analysis and Review of Practical Implications for COVID-19 Epidemics. ASAIO J. 2023, 69, e142–e148. [Google Scholar]
- Haroon, S.; Lau, T.; Tan, G.L.; Davenport, A. Telemedicine in the Satellite Dialysis Unit: Is It Feasible and Safe? Front. Med. 2021, 8, 634203. [Google Scholar] [CrossRef] [PubMed]
- Davenport, A. Why is Intradialytic Hypotension the Commonest Complication of Outpatient Dialysis Treatments? Kidney Int. Rep. 2022, 8, 405–418. [Google Scholar] [PubMed]
- Selby, N.M.; McIntyre, C.W. Peritoneal dialysis is not associated with myocardial stunning. Perit. Dial. Int. 2011, 31, 27–33. [Google Scholar]
- Selby, N.M.; Kazmi, I. Peritoneal dialysis has optimal intradialytic hemodynamics and preserves residual renal function: Why isn't it better than hemodialysis? Semin. Dial. 2019, 32, 3–8. [Google Scholar] [PubMed]
- Bargman, J.M.; Thorpe, K.E.; Churchill, D.N. Relative contribution of residual renal function and peritoneal clearance to adequacy of dialysis: A reanalysis of the CANUSA study. J. Am. Soc. Nephrol. 2001, 12, 2158–2162. [Google Scholar]
- van Olden, R.W.; van Acker, B.A.; Koomen, G.C.; Krediet, R.T.; Arisz, L. Time course of inulin and creatinine clearance in the interval between two haemodialysis treatments. Nephrol. Dial. Transplant. 1995, 10, 2274–2280. [Google Scholar]
- Li, Q.; Zhang, S.; Wu, Q.J.; Xiao, J.; Wang, Z.H.; Mu, X.W.; Zhang, Y.; Wang, X.N.; You, L.L.; Wang, S.N.; et al. Serum total indoxyl sulfate levels and all-cause and cardiovascular mortality in maintenance hemodialysis patients: A prospective cohort study. BMC Nephrol. 2022, 23, 231. [Google Scholar]
- van Olden, R.W.; Krediet, R.T.; Struijk, D.G.; Arisz, L. Measurement of residual renal function in patients treated with continuous ambulatory peritoneal dialysis. J. Am. Soc. Nephrol. 1996, 7, 745–750. [Google Scholar] [CrossRef] [PubMed]
- van Olden, R.W.; van Acker, B.A.; Koomen, G.C.; Krediet, R.T.; Arisz, L. Contribution of tubular anion and cation secretion to residual renal function in chronic dialysis patients. Clin. Nephrol. 1998, 49, 167–172. [Google Scholar] [PubMed]
- Vilar, E.; Boltiador, C.; Wong, J.; Viljoen, A.; Machado, A.; Uthayakumar, A.; Farrington, K. Plasma Levels of Middle Molecules to Estimate Residual Kidney Function in Haemodialysis without Urine Collection. PLoS ONE 2015, 10, e0143813. [Google Scholar]
- Jaques, D.A.; Davenport, A. Serum β2-microglobulin as a predictor of residual kidney function in peritoneal dialysis patients. J. Nephrol. 2021, 34, 473–481. [Google Scholar] [CrossRef]
- Butt, U.; Davenport, A.; Sridharan, S.; Farrington, K.; Vilar, E. A practical approach to implementing incremental haemodialysis. J. Nephrol. 2024, 37, 1791–1799. [Google Scholar]
- National Kidney Foundation. NKF-K/DOQI clinical practice guidelines for peritoneal dialysis adequacy. Am. J. Kid Dis. 1997, 30 (Suppl. S2), S67–S136. [CrossRef]
- Golper, T.A. National Kidney Foundation. A summary of the 2000 update of the NKF-K/DOQI clinical practice guidelines on peritoneal dialysis adequacy. Perit. Dial. Int. 2001, 21, 438–440. [Google Scholar] [CrossRef]
- Struijk, D.G.; Krediet, R.T. European best practice guidelines: Adequacy in peritoneal dialysis. Contrib. Nephrol. 2003, 140, 170–175. [Google Scholar]
- Peritoneal Dialysis Adequacy 2006 Work Group. Clinical practice recommendations for peritoneal dialysis adequacy. Am. J. Kidney Dis. 2006, 48, S146–S158. [Google Scholar]
- Watson, P.E.; Watson, I.D.; Batt, R.D. Total body water volumes for adult males and females estimated from simple anthropometric measurements. Am. J. Clin. Nutr. 1980, 33, 27–39. [Google Scholar]
- Shen, Y.; Su, X.; Yu, Z.; Yan, H.; Ma, D.; Xu, Y.; Yuan, J.; Ni, Z.; Gu, L.; Fang, W. Association between sarcopenic obesity and mortality in patients on peritoneal dialysis: A prospective cohort study. Front. Med. 2024, 11, 1342344. [Google Scholar]
- Davenport, A.; Hussain Sayed, R.; Fan, S. The effect of racial origin on total body water volume in peritoneal dialysis patients. Clin. J. Am. Soc. Nephrol. 2011, 6, 2492–2498. [Google Scholar] [PubMed]
- Davenport, A. Differences in prescribed Kt/V and delivered haemodialysis dose--why obesity makes a difference to survival for haemodialysis patients when using a 'one size fits all' Kt/V target. Nephrol. Dial. Transplant. 2013, 28 (Suppl. S4), iv219–iv223. [Google Scholar] [PubMed]
- El-Kateb, S.; Sridharan, S.; Farrington, K.; Fan, S.; Davenport, A. A single weekly Kt/Vurea target for peritoneal dialysis patients does not provide an equal dialysis dose for all. Kidney Int. 2016, 90, 1342–1347. [Google Scholar] [PubMed]
- Sridharan, S.; Vilar, E.; Davenport, A.; Ashman, N.; Almond, M.; Banerjee, A.; Roberts, J.; Farrington, K. Scaling Hemodialysis Target Dose to Reflect Body Surface Area, Metabolic Activity, and Protein Catabolic Rate: A Prospective, Cross-sectional Study. Am. J. Kidney Dis. 2017, 69, 358–366. [Google Scholar]
- Ikizler, T.A.; Burrowes, J.D.; Byham-Gray, L.D.; Campbell, K.L.; Carrero, J.J.; Chan, W.; Fouque, D.; Friedman, A.N.; Ghaddar, S.; Goldstein-Fuchs, D.J.; et al. KDOQI Clinical Practice Guideline for Nutrition in CKD: 2020 Update. Am. J. Kidney Dis. 2020, 76, S1-107. [Google Scholar]
- Ikizler, T.A.; Greene, J.H.; Wingard, R.L.; Parker, R.A.; Hakim, R.M. Spontaneous dietary protein intake during progression of chronic renal failure. J. Am. Soc. Nephrol. 1995, 6, 1386–1391. [Google Scholar] [PubMed]
- Salame, C.; Eaton, S.; Grimble, G.; Davenport, A. Protein Losses and Urea Nitrogen Underestimate Total Nitrogen Losses in Peritoneal Dialysis and Hemodialysis Patients. J. Ren. Nutr. 2018, 28, 317–323. [Google Scholar]
- Yoowannakul, S.; Harris, L.S.; Davenport, A. Peritoneal Protein Losses Depend on More Than Just Peritoneal Dialysis Modality and Peritoneal Membrane Transporter Status. Ther. Apher. Dial. 2018, 22, 171–177. [Google Scholar]
- Shaaker, H.; Davenport, A. Assessment of Nutritional Intake in Patients With Kidney Failure Treated by Haemodialysis on Dialysis and Non-dialysis Days. J. Ren. Nutr. 2024, 35, 172–180. [Google Scholar]
- Lambert, K.; Ryan, M.; Flanagan, J.; Broinowski, G.; Nicdao, M.; Stanford, J.; Chau, K. Dietary Patterns, Dietary Adequacy and Nutrient Intake in Adults Commencing Peritoneal Dialysis: Outcomes from a Longitudinal Cohort Study. Nutrients 2024, 16, 663. [Google Scholar] [CrossRef] [PubMed]
- Wright, M.; Woodrow, G.; O'Brien, S.; King, N.; Dye, L.; Blundell, J.; Brownjohn, A.; Turney, J. Disturbed appetite patterns and nutrient intake in peritoneal dialysis patients. Perit. Dial. Int. 2003, 23, 550–556. [Google Scholar] [PubMed]
- Law, S.; Davenport, A. Glucose absorption from peritoneal dialysate is associated with a gain in fat mass and a reduction in lean body mass in prevalent peritoneal dialysis patients. Br. J. Nutr. 2020, 123, 1269–1276. [Google Scholar] [PubMed]
- Kosmadakis, G.; Albaret, J.; da Costa Correia, E.; Somda, F.; Aguilera, D. Gastrointestinal Disorders in Peritoneal Dialysis Patients. Am. J. Nephrol. 2018, 48, 319–325. [Google Scholar]
- Bergström, J.; Heimburger, O.; Lindholm, B. Calculation of the protein equivalent of total nitrogen appearance from urea appearance: Which formulas should be used. Perit. Dial. Int. 1998, 18, 467–473. [Google Scholar]
- Davies, S.J.; Phillips, L.; Griffiths, A.M.; Naish, P.F.; Russell, G.I. Analysis of the effects of increasing delivered dialysis treatment to malnourished peritoneal dialysis patients. Kidney Int. 2000, 57, 1743–1754. [Google Scholar]
- Griffiths, A.; Russell, L.; Breslin, M.; Russell, G.; Davies, S. A comparison of two methods of dietary assessment in peritoneal dialysis patients. J. Ren. Nutr. 1999, 9, 26–31. [Google Scholar]
- Cioffi, I.; Marra, M.; Pasanisi, F.; Scalfi, L. Prediction of resting energy expenditure in healthy older adults: A systematic review. Clin. Nutr. 2021, 40, 3094–3310. [Google Scholar]
- Dombrowski, A.; Heuberger, R. Patients receiving dialysis do not have increased energy needs compared with healthy adults. J. Ren. Care. 2018, 44, 186–191. [Google Scholar]
- Pavlidou, E.; Papadopoulou, S.K.; Seroglou, K.; Giaginis, C. Revised Harris-Benedict Equation: New Human Resting Metabolic Rate Equation. Metabolites 2023, 13, 189. [Google Scholar] [CrossRef] [PubMed]
- Hung, R.; Sridharan, S.; Farrington, K.; Davenport, A. Comparison of estimates of resting energy expenditure equations in haemodialysis patients. Int. J. Artif. Organs 2017, 40, 96–101. [Google Scholar] [CrossRef] [PubMed]
- El-Kateb, S.; Sridharan, S.; Farrington, K.; Fan, S.; Davenport, A. Comparison of equations of resting and total energy expenditure in peritoneal dialysis patients using body composition measurements determined by multi-frequency bioimpedance. Clin. Nutr. 2018, 37, 646–650. [Google Scholar] [CrossRef]
- Aniort, J.; Montaurier, C.; Poyet, A.; Meunier, N.; Piraud, A.; Aguilera, D.; Bouiller, M.; Enache, I.; Ali, Y.; Jouve, C.; et al. Day and night changes in energy expenditure of patients on automated peritoneal dialysis. Clin. Nutr. 2021, 40, 3454–3461. [Google Scholar] [CrossRef]
- Sridharan, S.; Vilar, E.; Ramanarayanan, S.; Davenport, A.; Farrington, K. Energy expenditure estimates in chronic kidney disease using a novel physical activity questionnaire. Nephrol. Dial. Transplant. 2022, 37, 515–521. [Google Scholar] [CrossRef]
- El-Kateb, S.; Sridharan, S.; Farrington, K.; Davenport, A. Comparison of resting and total energy expenditure in peritoneal dialysis patients and body composition measured by dual-energy X-ray absorptiometry. Eur. J. Clin. Nutr. 2016, 70, 1337–1339. [Google Scholar] [CrossRef]
- Hendra, H.; Sridharan, S.; Farrington, K.; Davenport, A. Determinants of active energy expenditure in haemodialysis patients. Clin. Physiol. Funct. Imaging 2022, 42, 303–307. [Google Scholar] [CrossRef]
- Oliveira, B.; Sridharan, S.; Farrington, K.; Davenport, A. Comparison of resting energy equations and total energy expenditure in haemodialysis patients and body composition measured by multi-frequency bioimpedance. Nephrology 2018, 23, 748–754. [Google Scholar] [CrossRef] [PubMed]
- Sridharan, S.; Vilar, E.; Davenport, A.; Ashman, N.; Almond, M.; Banerjee, A.; Roberts, J.; Farrington, K. Indexing dialysis dose for gender, body size and physical activity: Impact on survival. PLoS ONE 2018, 13, e0203075. [Google Scholar] [CrossRef]
- McCafferty, K.; Fan, S.; Davenport, A. Extracellular volume expansion, measured by multifrequency bioimpedance, does not help preserve residual renal function in peritoneal dialysis patients. Kidney Int. 2014, 85, 151–157. [Google Scholar] [CrossRef]
- Gong, N.; Zhou, C.; Hu, J.; Zhong, X.; Yi, Z.; Zhang, T.; Yang, C.; Lin, Y.; Tian, J.; Qin, X.; et al. High-Salt Diet Accelerated the Decline of Residual Renal Function in Patients with Peritoneal Dialysis. Front. Med. 2021, 8, 728009. [Google Scholar]
- Medcalf, J.F.; Harris, K.P.; Walls, J. Role of diuretics in the preservation of residual renal function in patients on continuous ambulatory peritoneal dialysis. Kidney Int. 2001, 59, 1128–1133. [Google Scholar] [CrossRef]
- Michels, W.M.; Verduijn, M.; Grootendorst, D.C.; le Cessie, S.; Boeschoten, E.W.; Dekker, F.W.; Krediet, R.T. NECOSAD study group. Decline in residual renal function in automated compared with continuous ambulatory peritoneal dialysis. Clin. J. Am. Soc. Nephrol. 2011, 6, 537–542. [Google Scholar] [PubMed]
- Davies, S.J.; Davenport, A. The role of bioimpedance and biomarkers in helping to aid clinical decision-making of volume assessments in dialysis patients. Kidney Int. 2014, 86, 489–496. [Google Scholar] [PubMed]
- Ronco, C.; Verger, C.; Crepaldi, C.; Pham, J.; De Los Ríos, T.; Gauly, A.; Wabel, P.; Van Biesen, W. IPOD-PD Study Group. Baseline hydration status in incident peritoneal dialysis patients: The initiative of patient outcomes in dialysis (IPOD-PD study). Nephrol. Dial. Transplant. 2015, 30, 849–858. [Google Scholar] [CrossRef]
- Broers, N.J.; Martens, R.J.; Cornelis, T.; Diederen, N.M.; Wabel, P.; van der Sande, F.M.; Leunissen, K.M.; Kooman, J.P. Body composition in dialysis patients: A functional assessment of bioimpedance using different prediction models. J. Ren. Nutr. 2015, 25, 121–128. [Google Scholar]
- Jaques, D.A.; Davenport, A. Determinants of volume status in peritoneal dialysis: A longitudinal study. Nephrology 2020, 25, 785–791. [Google Scholar]
- Evans, W.J.; Guralnik, J.; Cawthon, P.; Appleby, J.; Landi, F.; Clarke, L.; Vellas, B.; Ferrucci, L.; Roubenoff, R. Sarcopenia: No consensus, no diagnostic criteria, and no approved indication-How did we get here? Geroscience 2024, 46, 183–190. [Google Scholar] [CrossRef]
- Flythe, J.E.; Chang, T.I.; Gallagher, M.P.; Lindley, E.; Madero, M.; Sarafidis, P.A.; Unruh, M.L.; Wang, A.Y.; Weiner, D.E.; Cheung, M.; et al. Conference Participants. Blood pressure and volume management in dialysis: Conclusions from a Kidney Disease: Improving Global Outcomes (KDIGO) Controversies Conference. Kidney Int. 2020, 97, 861–876. [Google Scholar]
- Crepaldi, C.; Lamas, E.I.; Martino, F.K.; Rodighiero, M.P.; Scalzotto, E.; Wojewodzka-Zelezniakowicz, M.; Rosner, M.H.; Ronco, C. Bioimpedance and brain natriuretic peptide in peritoneal dialysis patients. Contrib. Nephrol. 2012, 178, 174–181. [Google Scholar]
- Papakrivopoulou, E.; Lillywhite, S.; Davenport, A. Is N-terminal probrain-type natriuretic peptide a clinically useful biomarker of volume overload in peritoneal dialysis patients? Nephrol. Dial. Transplant. 2012, 27, 396–401. [Google Scholar] [PubMed]
- Prokopidis, K.; Irlik, K.; Ishiguchi, H.; Rietsema, W.; Lip, G.Y.H.; Sankaranarayanan, R.; Isanejad, M.; Nabrdalik, K. Natriuretic peptides and C-reactive protein in in heart failure and malnutrition: A systematic review and meta-analysis. ESC Heart Fail. 2024, 11, 3052–3064. [Google Scholar] [PubMed]
- Davenport, A. Changes in N-terminal pro-brain natriuretic peptide correlate with fluid volume changes assessed by bioimpedance in peritoneal dialysis patients. Am. J. Nephrol. 2012, 36, 371–376. [Google Scholar] [PubMed]
- Wijayaratne, D.; Muthuppalaniappan, V.M.; Davenport, A. Serum CA125 a potential marker of volume status for peritoneal dialysis patients? Int. J. Artif. Organs 2021, 44, 1029–1033. [Google Scholar]
- Marinescu, M.C.; Oprea, V.D.; Munteanu, S.N.; Nechita, A.; Tutunaru, D.; Nechita, L.C.; Romila, A. Carbohydrate Antigen 125 (CA 125): A Novel Biomarker in Acute Heart Failure. Diagnostics 2024, 14, 795. [Google Scholar] [CrossRef]
- Woodrow, G.; Fan, S.L.; Reid, C.; Denning, J.; Pyrah, A.N. Renal Association Clinical Practice Guideline on peritoneal dialysis in adults and children. BMC Nephrol. 2017, 18, 333. [Google Scholar]
- Navaratnarajah, A.; Clemenger, M.; McGrory, J.; Hisole, N.; Chelapurath, T.; Corbett, R.W.; Brown, E.A. Flexibility in peritoneal dialysis prescription: Impact on technique survival. Perit. Dial. Int. 2021, 41, 49–56. [Google Scholar]
- Borràs Sans, M.; Ponz Clemente, E.; Rodríguez Carmona, A.; Vera Rivera, M.; Pérez Fontán, M.; Quereda Rodríguez-Navarro, C.; Bajo Rubio, M.A.; de la Espada Piña, V.; Moreiras Plaza, M.; Pérez Contreras, J.; et al. Clinical guideline on adequacy and prescription of peritoneal dialysis. Nefrologia 2024, 44 (Suppl. S1), 1–27. [Google Scholar]
- Teitelbaum, I.; Glickman, J.; Neu, A.; Neumann, J.; Rivara, M.B.; Shen, J.; Wallace, E.; Watnick, S.; Mehrotra, R. KDOQI US Commentary on the 2020 ISPD Practice Recommendations for Prescribing High-Quality Goal-Directed Peritoneal Dialysis. Am. J. Kidney Dis. 2021, 77, 157–171. [Google Scholar]
- van Eck van der Sluijs, A.; van Jaarsveld, B.C.; Allen, J.; Altabas, K.; Béchade, C.; Bonenkamp, A.A.; Burkhalter, F.; Clause, A.L.; Corbett, R.W.; Dekker, F.W.; et al. Assisted peritoneal dialysis across Europe: Practice variation and factors associated with availability. Perit. Dial. Int. 2021, 41, 533–541. [Google Scholar]
- Jaques, D.A.; Davenport, A. Predicting solute transfer rate in patients initiating peritoneal dialysis. J. Nephrol. 2024, 37, 973–982. [Google Scholar] [PubMed]
- Davies, S.J.; Woodrow, G.; Donovan, K.; Plum, J.; Williams, P.; Johansson, A.C.; Bosselmann, H.P.; Heimbürger, O.; Simonsen, O.; Davenport, A.; et al. Icodextrin improves the fluid status of peritoneal dialysis patients: Results of a double-blind randomized controlled trial. J. Am. Soc. Nephrol. 2003, 14, 2338–2344. [Google Scholar] [CrossRef] [PubMed]
- Davies, S.J.; Garcia Lopez, E.; Woodrow, G.; Donovan, K.; Plum, J.; Williams, P.; Johansson, A.C.; Bosselmann, H.P.; Heimburger, O.; Simonsen, O.; et al. Longitudinal relationships between fluid status, inflammation, urine volume and plasma metabolites of icodextrin in patients randomized to glucose or icodextrin for the long exchange. Nephrol. Dial. Transplant. 2008, 23, 2982–2988. [Google Scholar] [PubMed]
- de Fijter, C.W.H.; Stachowska-Pietka, J.; Waniewski, J.; Lindholm, B. High Osmol Gap Hyponatremia Caused by Icodextrin: A Case Series Report. Am. J. Nephrol. 2024, 55, 202–205. [Google Scholar]
- Chhabra, R.; Davenport, A. Prehemodialysis hyponatremia and extracellular water: Is it simply too much water? Ther. Apher. Dial. 2022, 26, 154–161. [Google Scholar]
- Adrogué, H.J.; Tucker, B.M.; Madias, N.E. Diagnosis and Management of Hyponatremia: A Review. JAMA 2022, 328, 280–291. [Google Scholar]
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Davenport, A. Prescribing Peritoneal Dialysis for Elderly Patients Starting Peritoneal Dialysis. Kidney Dial. 2025, 5, 13. https://doi.org/10.3390/kidneydial5020013
Davenport A. Prescribing Peritoneal Dialysis for Elderly Patients Starting Peritoneal Dialysis. Kidney and Dialysis. 2025; 5(2):13. https://doi.org/10.3390/kidneydial5020013
Chicago/Turabian StyleDavenport, Andrew. 2025. "Prescribing Peritoneal Dialysis for Elderly Patients Starting Peritoneal Dialysis" Kidney and Dialysis 5, no. 2: 13. https://doi.org/10.3390/kidneydial5020013
APA StyleDavenport, A. (2025). Prescribing Peritoneal Dialysis for Elderly Patients Starting Peritoneal Dialysis. Kidney and Dialysis, 5(2), 13. https://doi.org/10.3390/kidneydial5020013