Acute Kidney Injury Post-Percutaneous Nephrolithotomy (PNL): Prospective Outcomes from a University Teaching Hospital
Abstract
:1. Introduction
2. Patients and Methods
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Türk, C.; Petřík, A.; Sarica, K.; Seitz, C.; Skolarikos, A.; Straub, M.; Knoll, T. EAU guidelines on interventional treatment for urolithiasis. Eur. Urol. 2016, 69, 475–482. [Google Scholar] [CrossRef]
- Reeves, T.; Pietropaolo, A.; Gadzhiev, N.; Seitz, C.; Somani, B.K. Role of Endourological Procedures (PCNL and URS) on Renal Function: A Systematic Review. Curr. Urol. Rep. 2020, 21, 21. [Google Scholar] [CrossRef] [Green Version]
- Mehta, R.L.; Kellum, J.A.; Shah, S.V.; Molitoris, B.A.; Ronco, C.; Warnock, D.G.; Levin, A. Acute Kidney Injury Network: Report of an initiative to improve outcomes in acute kidney injury. Crit. Care 2007, 11, R31. [Google Scholar] [CrossRef] [Green Version]
- Kidney Disease: Improving Global Outcomes (KDIGO) Acute Kidney Injury Work Group. KDIGO Clinical Practice Guideline for Acute Kidney Injury. Kidney Int. Suppl. 2012, 2, 1–138. [Google Scholar]
- Chertow, G.M.; Burdick, E.; Honour, M.; Bonventre, J.V.; Bates, D.W. Acute kidney injury, mortality, length of stay, and costs in hospitalized patients. J. Am. Soc. Nephrol. 2005, 16, 3365–3370. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hobson, C.; Ozrazgat-Baslanti, T.; Kuxhausen, A.; Thottakkara, P.; Efron, P.A.; Moore, F.A.; Moldawer, L.L.; Segal, M.S.; Bihorac, A. Cost and mortality associated with postoperative acute kidney injury. Ann. Surg. 2015, 261, 1207–1214. [Google Scholar] [CrossRef] [PubMed]
- Okusa, M.D.; Davenport, A. Reading between the (guide) lines: The KD IGO practice guideline on acute kidney injury in the individual patient. Kidney Int. 2014, 85, 39–48. [Google Scholar] [CrossRef] [Green Version]
- Caddeo, G.; Williams, S.T.; McIntyre, C.W.; Selby, N.M. Acute kidney injury in urology patients: Incidence, causes and outcomes. Nephrourol. Mon. 2013, 5, 955–961. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Thongprayoon, C.; Cheungpasitporn, W.; Akhoundi, A.; Ahmed, A.H.; Kashani, K.B. Actual versus ideal body weight for acute kidney injury diagnosis and classification in critically Ill patients. BMC Nephrol. 2014, 15, 176. [Google Scholar] [CrossRef] [Green Version]
- De La Rosette, J.J.; Opondo, D.; Daels, F.P.; Giusti, G.; Serrano, A.; Kandasami, S.V.; Wolf, J.S., Jr.; Grabe, M.; Gravas, S.; Croes Pcnl Study Group. Categorisation of complications and validation of the Clavien score for percutaneous nephrolithotomy. Eur. Urol. 2012, 62, 246–255. [Google Scholar] [CrossRef] [PubMed]
- Michel, M.S.; Trojan, L.; Rassweiler, J.J. Complications in percutaneous nephrolithotomy. Eur. Urol. 2007, 51, 899–906, discussion 906. [Google Scholar] [CrossRef]
- Yu, J.; Park, H.K.; Kwon, H.J.; Lee, J.; Hwang, J.H.; Kim, H.Y. Risk factors for acute kidney injury after percutaneous nephrolithotomy: Implications of intraoperative hypotension. Medicine 2018, 97, e11580. [Google Scholar] [CrossRef]
- Fulla, J.; Calle, J.; Elia, M.; Wright, H.; Li, I. MP22-03 Acute kidney injury and percutaneous nephrolithotomy: Frequency and predictive factors. J. Urol. 2020, 203 (Suppl. 4), e328. [Google Scholar] [CrossRef]
- El-Nahas, A.R.; Taha, D.E.; Ali, H.M.; Elshal, A.M.; Zahran, M.H.; El-Tabey, N.A.; El-Assmy, A.M.; Harraz, A.M.; Moawad, H.E.; Othman, M.M. Othman Acute kidney injury after percutaneous nephrolithotomy for stones in solitary kidneys. Scand. J. Urol. 2017, 51, 165–169. [Google Scholar] [CrossRef]
- Patel, R.; Agarwal, S.; Sankhwar, S.N.; Goel, A.; Singh, B.P.; Kumar, M. A prospective study assessing feasibility of performing percutaneous nephrolithotomy in chronic kidney disease patients—What factors affect the outcome? Int. Braz J. Urol. 2019, 45, 765–774. [Google Scholar] [CrossRef] [Green Version]
- Emiliani, E.; Talso, M.; Baghdadi, M.; Traxer, O. Renal parenchyma injury after percutaneous nephrolithotomy tract dilatations in pig and cadaveric kidney models. Cent. Eur. J. Urol. 2017, 70, 69–75. [Google Scholar]
- Sairam, K.; Scoffone, C.M.; Alken, P.; Turna, B. Percutaneous nephrolithotomy and chronic kidney disease: Results from the CROES PC NL Global Study. J. Urol. 2012, 188, 1195–1200. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Charlson, M.E.; MacKenzie, C.R.; Gold, J.P.; Ales, K.L.; Topkins, M.; Shires, G.T. Preoperative characteristics predicting intraoperative hypotension and hypertension among hypertensives and diabetics undergoing noncardiac surgery. Ann. Surg. 1990, 212, 66–81. [Google Scholar] [CrossRef]
- Oakley, I.; Emond, L. Diabetic cardiac autonomic neuropathy and anesthetic management: Review of the literature. AANA J. 2011, 79, 473–479. [Google Scholar]
- Comfere, T.; Sprung, J.; Kumar, M.M.; Draper, M.; Wilson, D.P.; Williams, B.A.; Danielson, D.R.; Liedl, L.; Warner, D.O. Angiotensin system inhibitors in a general surgical population. Anesth Analg. 2005, 100, 636–644. [Google Scholar] [CrossRef]
- Cheungpasitporn, W.; Thongprayoon, C.; Harrison, A.M.; Erickson, S.B. Admission hyperuricemia increases the risk of acute kidney injury in hospitalized patients. Clin. Kidney J. 2016, 9, 51–56. [Google Scholar] [CrossRef] [Green Version]
- Ejaz, A.A.; Johnson, R.J.; Shimada, M.; Mohandas, R.; Alquadan, K.F.; Beaver, T.M.; Lapsia, V.; Dass, B. The Role of Uric Acid in Acute Kidney Injury. Nephron 2019, 142, 275–283. [Google Scholar] [CrossRef]
- De la Rosette, J.J.; Zuazu, J.R.; Tsakiris, P.; Elsakka, A.M.; Zudaire, J.J.; Laguna, M.P.; de Reijke, T.M. Prognostic factors and percutaneous nephrolithotomy morbidity: A multivariate analysis of a contemporary series using the Clavien classification. J. Urol. 2008, 180, 2489–2493. [Google Scholar] [CrossRef]
- Muslumanoglu, A.Y.; Tefekli, A.; Karadag, M.A.; Tok, A.; Sari, E.; Berberoglu, Y. Impact of percutaneous access point number and location on complication and success rates in percutaneous nephrolithotomy. Urol. Int. 2006, 77, 340–346. [Google Scholar] [CrossRef]
- Aron, M.; Yadav, R.; Goel, R.; Kolla, S.B.; Gautam, G.; Hemal, A.K.; Gupta, N.P. Multi-tract percutaneous nephrolithotomy for large complete staghorn calculi. Urol. Int. 2005, 75, 327–332. [Google Scholar] [CrossRef]
- Rashid, A.O.; Fakhulddin, S.S. Risk factors for fever and sepsis after percutaneous nephrolithotomy. Asian J. Urol. 2016, 3, 82–87. [Google Scholar] [CrossRef] [Green Version]
- Devarajan, P. Emerging urinary biomarkers in the diagnosis of acute kidney injury. Expert Opin. Med. Diagn. 2008, 2, 387–398. [Google Scholar] [CrossRef] [PubMed]
- Borthwick, E.; Ferguson, A. Perioperative acute kidney injury: Risk factors, recognition, management, and outcomes. BMJ 2010, 341, c3365. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Venkatachalam, M.A.; Griffin, K.A.; Lan, R.; Geng, H.; Saikumar, P.; Bidani, A.K. Acute kidney injury: A springboard for progression in chronic kidney disease. Am. J. Physiol. Renal. Physiol. 2010, 298, F1078–F1094. [Google Scholar] [CrossRef] [Green Version]
- Bucuras, V.; Gopalakrishnam, G.; Wolf, J.S., Jr.; Sun, Y.; Bianchi, G.; Erdogru, T.; de la Rosette, on behalf of the CROES PCNL Study Group. The Clinical Research Office of the Endourological Society Percutaneous Nephrolithotomy Global Study: Nephrolithotomy in 189 patients with solitary kidneys. J. Endourol. 2012, 26, 336–341. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Shi, X.; Peng, Y.; Li, L.; Li, X.; Wang, Q.; Zhang, W.; Dong, H.; Shen, R.; Lu, C.; Liu, M.; et al. Renal function changes after percutaneous nephrolithotomy in patients with renal calculi with a solitary kidney compared to bilateral kidneys. BJU Int. 2018, 122, 633–638. [Google Scholar] [CrossRef] [PubMed]
Complication | Clavien–Dindo | 15Fr | 22Fr | 24Fr | 26Fr | 28Fr | 30Fr | 32Fr | 34Fr | 36Fr | p-Value |
---|---|---|---|---|---|---|---|---|---|---|---|
Fever | 2 | 8 | 0 | 3 | 8 | 18 | 4 | 12 | 1 | 2 | 0.743 |
Haematuria | 1 | 0 | 0 | 2 | 5 | 3 | 1 | 8 | 0 | 0 | 0.342 |
Angioembolization | 3B | 0 | 0 | 1 | 3 | 2 | 0 | 0 | 0 | 0 | 0.663 |
Auxiliary proc. | 0.143 | ||||||||||
URS | 0 | 0 | 0 | 2 | 3 | 1 | 1 | 0 | 0 | ||
2nd PNL | 0 | 0 | 0 | 2 | 0 | 0 | 2 | 0 | 0 | ||
Bladder wash | 0 | 0 | 1 | 2 | 0 | 0 | 2 | 0 | 0 | ||
Stent reposition | 3A | 0 | 0 | 0 | 0 | 0 | 1 | 0 | 0 | 0 | |
Visual internal Urethrotomy | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 1 |
Variables | All Patients (n = 509) | AKI Cohort (n = 47) | Non-AKI (n = 462) | p-Value | |
---|---|---|---|---|---|
Patient Characteristics | |||||
Age (years) (mean ± SD) | 48.13 ± 13.92 | 54.83 ± 13.907 | 47.45 ± 13.75 | 0.001 | |
Gender (M) | 388 (76.2%) | 39 (83%) | 349 (75.5%) | 0.254 | |
Gender (F) | 121 (23.8%) | 8 (17%) | 113 (24.5%) | ||
BMI (kg/m2) | 25.23 ± 2.94 | 25.21 ± 3.12 | 25.23 ± 2.92 | 0.974 | |
Hypertension | 142 (27.9%) | 24 (51.1%) | 118 (25.5%) | 0.0002 | |
Diabetes mellitus | 94 (18.5%) | 14 (29.8%) | 80 (17.3%) | 0.036 | |
ACE inhibitors | 22 (4.3%) | 5 (10.6%) | 17 (3.7%) | 0.043 | |
Beta-blockers | 10 (2%) | 1 (2.1%) | 9 (1.9%) | 1.00 | |
Preoperative Laboratory Values | |||||
Hemoglobin (mg/dL) | 13.29 ± 1.91 | 12.63 ± 2.25 | 13.36 ± 1.86 | 0.013 | |
Platelet(/µL) | 273,669.36 ± 79,821.98 | 276,833.33 ± 103,392.68 | 273,354 ± 77,278.68 | 0.778 | |
Prothrombin time (s) | 10.58 ± 0.39 | 10.75 ± 0.66 | 10.55 ± 0.32 | 0.006 | |
Creatinine (mg/dL) | 1.42 ± 4.30 | 1.34 ± 0.76 | 1.43 ± 4.5 | 0.895 | |
Uric Acid (mg/dL) | 4.13 ± 1.52 | 5.23 ± 1.46 | 3.91 ± 1.44 | 0.00001 | |
Total leucocyte count (/mm3) | 8.73 ± 3.84 | 9.73 ± 9.54 | 8.63 ± 2.65 | 0.06 | |
Stone Characteristics | |||||
Stone Volume (mm3) (median (Q1–Q3)) | 880.95 (524.38–1801.25) | 2117.94 (761–12,452) | 825 (503–1573) | 0.00 | |
Hounsfield Unit (HU) | 970.59 ± 278.55 | 817.45 ± 439.76 | 985.18 ± 253.98 | 0.0001 | |
Stone location | Upper Calyx | 26 (5.1%) | 2 (4.3%) | 24 (5.2%) | 1.000 |
Middle Calyx | 53 (10.4%) | 9 (19.1%) | 44 (9.5%) | 0.074 | |
Lower Calyx | 138 (27.1%) | 15 (31.9%) | 123 (26.6%) | 0.437 | |
Pelvic | 190 (37.3%) | 14 (29.8%) | 176 (38.1%) | 0.262 | |
PUJ | 153 (30.1%) | 12 (25.5%) | 141 (30.5%) | 0.477 | |
Staghorn | 21 (4.12%) | 6 (12.8%) | 15 (3.24%) | 0.008 |
Variables | All Patients (n = 509) | AKI Cohort (n = 47) | Non-AKI (n = 462) | p | |
---|---|---|---|---|---|
Puncture site | Supracostal | 75 (14.7%) | 5 (10.6%) | 70 (15.2%) | 0.406 |
Infracostal | 434 (85.3%) | 42 (89.4%) | 392 (84.8%) | ||
Tract size (Fr) (median (Q1–Q3)) | 28 (26–32) | 28 (26–28) | 28 (26–32) | 0.032 | |
Puncture Number | Single Puncture | 497 (97.6%) | 43 (91.5%) | 454 (98.3%) | 0.019 |
>1 Puncture | 12 (2.35%) | 4 (8.51%) | 8 (1.73%) | ||
Blood Transfusion | 15 (2.9%) | 3 (6.4%) | 12 (2.6%) | 0.153 | |
Operative time (minutes) | 55.99 ± 16.71 | 63.51 ± 21.79 | 55.23 ± 15.93 | 0.001 |
Variable | Univariate Analysis | Multivariate Analysis | |||
---|---|---|---|---|---|
Unadjusted OR | p-Value | Adjusted OR | p-Value | ||
Age | 1.041 (1.017–1.066) | 0.001 | 1.050 (0.998–1.105) | 0.060 | |
Gender | Male | 1.578 (0.717–3.477) | 0.257 | 0.129 (0.021–0.787) | 0.026 |
Female | 1.0 | 1.0 | |||
BMI | 0.998 (0.901–1.106) | 0.974 | 0.712 (0.550–0.923) | 0.010 | |
Hypertension | Yes | 3.042 (1.655–5.593) | 0.0003 | 2.514 (0.699–9.035) | 0.158 |
No | 1.0 | 1.0 | |||
Diabetes Mellitus | Yes | 2.026 (1.037–3.959) | 0.039 | 2.423 (0.521–11.260) | 0.259 |
No | 1.0 | 1.0 | |||
ACE inhibitors | Yes | 3.116 (1.095–8.871) | 0.033 | 60.404 (1.619–2253.49) | 0.026 |
No | 1.0 | 1.0 | |||
Beta-blocker | Yes | 1.094 (0.136–8.830) | 0.933 | 0.770 (0.031–19.033) | 0.873 |
No | 1.0 | 1.0 | |||
Creatinine | 0.994 (0.911–1.085) | 0.896 | 1.332 (0.861–2.059) | 0.198 | |
Uric Acid | 1.758 (1.336–2.315) | 0.00005 | 2.163 (1.459–3.209) | 0.0001 | |
Total leucocyte count | 1.045 (0.989–1.103) | 0.116 | 0.999 (0.841–1.187) | 0.988 | |
Operative Time | 1.028 (0.983–1.049) | 0.001 | 1.015 (0.982–1.049) | 0.364 | |
Blood Transfusion (n) | Yes | 2.557 (0.695–9.405) | 0.158 | 8.408 (0.396–178.42) | 0.172 |
No | 1.0 | 1.0 | |||
Stone size | 1.000 | 1.000 | |||
Stone Location (n) | Upper calyx | 0.811 (0.186–3.545) | 0.781 | 0.223 (0.011–4.509) | 0.328 |
Middle calyx | 2.250 (1.021–4.959) | 0.044 | 1.822 (0.269–12.370) | 0.539 | |
Lower calyx | 1.292 (0.676–2.467) | 0.438 | 1.843 (0.336–10.121) | 0.482 | |
Pelvis | 0.689 (0.359–1.324) | 0.264 | 1.897 (0.333–10.796) | 0.471 | |
PUJ | 0.478 (0.394–1.548) | 0.781 | 1.582 (0.205–12.207) | 0.660 | |
Staghorn | 4.361 (1.605–11.846) | 0.004 | 0.594 (0.032–10.944) | 0.726 | |
Tract number (n) | Single Tract | 1.000 | 1.000 | ||
>1 Tracts | 5.279 (1.527–18.248) | 0.009 | 89.698 (0.795–10,119.9) | 0.062 | |
Tract site (n) | Supracostal | 0.667 (0.255–1.744) | 0.408 | 0.054 (0.003–1.121) | 0.05 |
Infracostal |
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Pillai, S.; Kriplani, A.; Chawla, A.; Somani, B.; Pandey, A.; Prabhu, R.; Choudhury, A.; Pandit, S.; Taori, R.; Hegde, P. Acute Kidney Injury Post-Percutaneous Nephrolithotomy (PNL): Prospective Outcomes from a University Teaching Hospital. J. Clin. Med. 2021, 10, 1373. https://doi.org/10.3390/jcm10071373
Pillai S, Kriplani A, Chawla A, Somani B, Pandey A, Prabhu R, Choudhury A, Pandit S, Taori R, Hegde P. Acute Kidney Injury Post-Percutaneous Nephrolithotomy (PNL): Prospective Outcomes from a University Teaching Hospital. Journal of Clinical Medicine. 2021; 10(7):1373. https://doi.org/10.3390/jcm10071373
Chicago/Turabian StylePillai, Sunil, Akshay Kriplani, Arun Chawla, Bhaskar Somani, Akhilesh Pandey, Ravindra Prabhu, Anupam Choudhury, Shruti Pandit, Ravi Taori, and Padmaraj Hegde. 2021. "Acute Kidney Injury Post-Percutaneous Nephrolithotomy (PNL): Prospective Outcomes from a University Teaching Hospital" Journal of Clinical Medicine 10, no. 7: 1373. https://doi.org/10.3390/jcm10071373
APA StylePillai, S., Kriplani, A., Chawla, A., Somani, B., Pandey, A., Prabhu, R., Choudhury, A., Pandit, S., Taori, R., & Hegde, P. (2021). Acute Kidney Injury Post-Percutaneous Nephrolithotomy (PNL): Prospective Outcomes from a University Teaching Hospital. Journal of Clinical Medicine, 10(7), 1373. https://doi.org/10.3390/jcm10071373