The Efficiency of Serum Biomarkers in Predicting the Clinical Outcome of Patients with Mesenteric Ischemia during Follow-Up: A Systematic Review
Abstract
:1. Introduction
2. Materials and Methods
2.1. Data Sources and Search Strategy
2.2. Study Selection and Eligibility Criteria
2.3. Data Extraction
2.4. Quality Assessment
3. Results
3.1. Biomarkers with Clinical Use
3.2. Biomarkers in Preclinical Research
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Sakamoto, T.; Kubota, T.; Funakoshi, H.; Lefor, A.K. Multidisciplinary Management of Acute Mesenteric Ischemia: Surgery and Endovascular Intervention. World J. Gastrointest. Surg. 2021, 13, 806–813. [Google Scholar] [CrossRef]
- Blauw, J.T.; Meerwaldt, R.; Brusse-Keizer, M.; Kolkman, J.J.; Gerrits, D.; Geelkerken, R.H.; Multidisciplinary Study Group of Mesenteric Ischemia. Retrograde Open Mesenteric Stenting for Acute Mesenteric Ischemia. J. Vasc. Surg. 2014, 60, 726–734. [Google Scholar] [CrossRef]
- Huang, H.H.; Chang, Y.C.; Yen, D.H.; Kao, W.F.; Chen, J.D.; Wang, L.M.; Huang, C.-I.; Lee, C.-H. Clinical Factors and Outcomes in Patients with Acute Mesenteric Ischemia in the Emergency Department. J. Chin. Med. Assoc. 2005, 68, 299–306. [Google Scholar] [CrossRef] [PubMed]
- Brandt, L.J.; Boley, S.J. AGA Technical Review on Intestinal Ischemia. Gastroenterology 2000, 118, 954–968. [Google Scholar] [CrossRef] [PubMed]
- Moher, D.; Shamseer, L.; Clarke, M.; Ghersi, D.; Liberati, A.; Petticrew, M.; Shekelle, P.; Stewart, L.A.; PRISMA-P Group. Preferred Reporting Items for Systematic Review and Meta-Analysis Protocols (PRISMA-P) 2015 Statement. Syst. Rev. 2015, 4, 1. [Google Scholar] [CrossRef]
- Groesdonk, H.V.; Raffel, M.; Speer, T.; Bomberg, H.; Schmied, W.; Klingele, M.; Schäfers, H.-J. Elevated Endothelin-1 Level Is a Risk Factor for Nonocclusive Mesenteric Ischemia. J. Thorac. Cardiovasc. Surg. 2015, 149, 1436–1442.e2. [Google Scholar] [CrossRef]
- Pelsers, M.M.; Namiot, Z.; Kisielewski, W.; Namiot, A.; Januszkiewicz, M.; Hermens, W.T.; Glatz, J.F. Intestinal-Type and Liver-Type Fatty Acid-Binding Protein in the Intestine. Tissue Distribution and Clinical Utility. Clin. Biochem. 2003, 36, 529–535. [Google Scholar] [CrossRef]
- Schellekens, D.H.; Grootjans, J.; Dello, S.A.; van Bijnen, A.A.; van Dam, R.M.; Dejong, C.H.; Derikx, J.P.; Buurman, W.A. Plasma Intestinal Fatty Acid-Binding Protein Levels Correlate with Morphologic Epithelial Intestinal Damage in a Human Translational Ischemia-Reperfusion Model. J. Clin. Gastroenterol. 2014, 48, 253–260. [Google Scholar] [CrossRef]
- Niewold, T.A.; Meinen, M.; van der Meulen, J. Plasma Intestinal Fatty Acid Binding Protein (I-FABP) Concentrations Increase Following Intestinal Ischemia in Pigs. Res. Vet. Sci. 2004, 77, 89–91. [Google Scholar] [CrossRef] [PubMed]
- Thuijls, G.; van Wijck, K.; Grootjans, J.; Derikx, J.P.M.; van Bijnen, A.A.; Heineman, E.; Dejong, C.H.; Buurman, W.A.; Poeze, M. Early Diagnosis of Intestinal Ischemia Using Urinary and Plasma Fatty Acid Binding Proteins. Ann. Surg. 2011, 253, 303–308. [Google Scholar] [CrossRef]
- Bourcier, S.; Ulmann, G.; Jamme, M.; Savary, G.; Paul, M.; Benghanem, S.; Lavillegrand, J.-R.; Schmidt, M.; Luyt, C.-E.; Maury, E. A Multicentric Prospective Observational Study of Diagnosis and Prognosis Features in ICU Mesenteric Ischemia: The DIAGOMI Study. Ann. Intensive Care 2022, 12, 113. [Google Scholar] [CrossRef]
- Sekino, M.; Funaoka, H.; Sato, S.; Okada, K.; Inoue, H.; Yano, R.; Matsumoto, S.; Ichinomiya, T.; Higashijima, U.; Matsumoto, S.; et al. Intestinal Fatty Acid-Binding Protein Level as a Predictor of 28-Day Mortality and Bowel Ischemia in Patients with Septic Shock: A Preliminary Study. J. Crit. Care 2017, 42, 92–100. [Google Scholar] [CrossRef]
- Matsumoto, S.; Shiraishi, A.; Kojima, M.; Funaoka, H.; Funabiki, T.; Saida, F.; Kitano, M. Comparison of Diagnostic Accuracy for Nonocclusive Mesenteric Ischemia in Models with Biomarkers Including Intestinal Fatty Acid-Binding Protein in Addition to Clinical Findings. J. Trauma Acute Care Surg. 2019, 86, 220–225. [Google Scholar] [CrossRef]
- Güzel, M.; Sözüer, E.M.; Salt, Ö.; İkizceli, İ.; Akdur, O.; Yazıcı, C. Value of the Serum I-FABP Level for Diagnosing Acute Mesenteric Ischemia. Surg. Today 2014, 44, 2072–2076. [Google Scholar] [CrossRef] [PubMed]
- Kanda, T.; Tsukahara, A.; Ueki, K.; Sakai, Y.; Tani, T.; Nishimura, A.; Yamazaki, T.; Tamiya, Y.; Tada, T.; Hirota, M.; et al. Diagnosis of Ischemic Small Bowel Disease by Measurement of Serum Intestinal Fatty Acid-Binding Protein in Patients with Acute Abdomen: A Multicenter, Observer-Blinded Validation Study. J. Gastroenterol. 2011, 46, 492–500. [Google Scholar] [CrossRef] [PubMed]
- Conde Monroy, D.M.; Girón Arango, F.; Rodríguez Moreno, L.; Rey Chaves, C.E.; Donoso-Samper, A.; Nassar, R.; Isaza-Restrepo, A. Succoring the Challenging Acute Mesenteric Ischemia: Feasibility of Lactate Dehydrogenase for Evaluation of Intestinal Necrosis Extension and Mortality. Ann. Med. Surg. 2022, 84, 104922. [Google Scholar] [CrossRef]
- Studer, P.; Vaucher, A.; Candinas, D.; Schnüriger, B. The Value of Serial Serum Lactate Measurements in Predicting the Extent of Ischemic Bowel and Outcome of Patients Suffering Acute Mesenteric Ischemia. J. Gastrointest. Surg. 2015, 19, 751–755. [Google Scholar] [CrossRef] [PubMed]
- Martin, J.; Depietro, R.; Bartoli, A.; Markarian, T.; De Maria, L.; Di Bisceglie, M.; Persico, N.; Michelet, P.; Mege, D. Acute Mesenteric Ischemia: Which Predictive Factors of Delayed Diagnosis at Emergency Unit? Eur. J. Trauma Emerg. Surg. 2023, 49, 1999–2008. [Google Scholar] [CrossRef] [PubMed]
- Destek, S.; Yabacı, A.; Abik, Y.N.; Gül, V.O.; Değer, K.C. Predictive and Prognostic Value of L-Lactate, D-Dimer, Leukocyte, C-Reactive Protein and Neutrophil/Lymphocyte Ratio in Patients with Acute Mesenteric Ischemia. Ulus Travma Acil Cerrahi Derg. 2020, 26, 86–94. [Google Scholar] [CrossRef] [PubMed]
- Murray, M.J.; Gonze, M.D.; Nowak, L.R.; Cobb, C.F. Serum D(-)-lactate levels as an aid to diagnosing acute intestinal ischemia. Am. J. Surg. 1994, 167, 575–578. [Google Scholar] [CrossRef] [PubMed]
- Nielsen, C.; Lindholt, J.S.; Erlandsen, E.J.; Mortensen, F.V. D-Lactate as a Marker of Venous-Induced Intestinal Ischemia: An Experimental Study in Pigs. Int. J. Surg. 2011, 9, 428–432. [Google Scholar] [CrossRef] [PubMed]
- Sun, X.Q.; Fu, X.B.; Zhang, R.; Lü, Y.; Deng, Q.; Jiang, X.G.; Sheng, Z.Y. Relationship between Plasma D(-)-Lactate and Intestinal Damage After Severe Injuries in Rats. World J. Gastroenterol. 2001, 7, 555–558. [Google Scholar] [CrossRef] [PubMed]
- Narula, R.K.; El Shafei, A.; Ramaiah, D.; Schmitz, P.G. D-Lactic Acidosis 23 Years After Jejuno-Ileal Bypass. Am. J. Kidney Dis. 2000, 36, 1–4. [Google Scholar] [CrossRef] [PubMed]
- Kadakia, S.C. D-Lactic Acidosis in a Patient with Jejunoileal Bypass. J. Clin. Gastroenterol. 1995, 20, 154–156. [Google Scholar] [CrossRef] [PubMed]
- Uribarri, J.; Oh, M.S.; Carroll, H.J. D-Lactic Acidosis: A Review of Clinical Presentation, Biochemical Features, and Pathophysiologic Mechanisms. Medicine 1998, 77, 73–82. [Google Scholar] [CrossRef] [PubMed]
- Evennett, N.J.; Petrov, M.S.; Mittal, A.; Windsor, J.A. Systematic Review and Pooled Estimates for the Diagnostic Accuracy of Serological Markers for Intestinal Ischemia. World J. Surg. 2009, 33, 1374–1383. [Google Scholar] [CrossRef]
- Demir, I.E.; Ceyhan, G.O.; Friess, H. Beyond Lactate: Is There a Role for Serum Lactate Measurement in Diagnosing Acute Mesenteric Ischemia? Dig. Surg. 2012, 29, 226–235. [Google Scholar] [CrossRef]
- Muhtaroğlu, A.; Çapoğlu, R.; Uygur, F.A.; Harmantepe, A.T.; Bayhan, Z.; Gönüllü, E. FAR Ratio as Prognostic Biomarker in AMI. SN Compr. Clin. Med. 2023, 5, 109. [Google Scholar] [CrossRef]
- Augène, E.; Lareyre, F.; Chikande, J.; Guidi, L.; Ballaith, A.; Bossert, J.N.; Pelletier, Y.; Caradu, C.; Hassen-Khodja, R.; Raffort, J. Platelet to Lymphocyte Ratio as a Predictive Factor of 30-Day Mortality in Patients with Acute Mesenteric Ischemia. PLoS ONE 2019, 14, e0219763. [Google Scholar] [CrossRef]
- Cosse, C.; Sabbagh, C.; Browet, F.; Mauvais, F.; Rebibo, L.; Zogheib, E.; Chatelain, D.; Kamel, S.; Regimbeau, J.M. Serum Value of Procalcitonin as a Marker of Intestinal Damages: Type, Extension, and Prognosis. Surg. Endosc. 2015, 29, 3132–3139. [Google Scholar] [CrossRef]
- Cosse, C.; Regimbeau, J.M.; Fuks, D.; Mauvais, F.; Scotte, M. Serum Procalcitonin for Predicting the Failure of Conservative Management and the Need for Bowel Resection in Patients with Small Bowel Obstruction. J. Am. Coll. Surg. 2013, 216, 997–1004. [Google Scholar] [CrossRef] [PubMed]
- Cosse, C.; Sabbagh, C.; Rebibo, L.; Grelpois, G.; Galmiche, A.; Regimbeau, J.M. Kinetics of Procalcitonin in the Management of Small Bowel Obstruction: A Preliminary Report. Surg. Curr. Res. 2014, 4, 1000184. [Google Scholar] [CrossRef]
- Karabulut, K.; Gül, M.; Dündar, Z.D.; Cander, B.; Kurban, S.; Toy, H. Diagnostic and Prognostic Value of Procalcitonin and Phosphorus in Acute Mesenteric Ischemia. Ulus Travma Acil Cerrahi Derg. 2011, 17, 193–198. [Google Scholar] [CrossRef] [PubMed]
- Karaca, Y.; Gündüz, A.; Türkmen, S.; Menteşe, A.; Türedi, S.; Eryiğit, U.; Karahan, S.C. Diagnostic Value of Procalcitonin Levels in Acute Mesenteric Ischemia. Balkan Med. J. 2015, 32, 291–295. [Google Scholar] [CrossRef]
- Nagata, J.; Kobayashi, M.; Nishikimi, N.; Komori, K. Serum Procalcitonin (PCT) as a Negative Screening Test for Colonic Ischemia After Open Abdominal Aortic Surgery. Eur. J. Vasc. Endovasc. Surg. 2008, 35, 694–697. [Google Scholar] [CrossRef] [PubMed]
- Markogiannakis, H.; Memos, N.; Messaris, E.; Dardamanis, D.; Larentzakis, A.; Papanikolaou, D.; Larentzakis, A.; Papanikolaou, D.; Zografos, G.C.; Manouras, A. Predictive Value of Procalcitonin for Bowel Ischemia and Necrosis in Bowel Obstruction. Surgery 2011, 149, 394–403. [Google Scholar] [CrossRef] [PubMed]
- Cakmaz, R.; Büyükaşık, O.; Kahramansoy, N.; Erkol, H.; Cöl, C.; Boran, C.; Bugdayci, G. A Combination of Plasma DAO and Citrulline Levels as a Potential Marker for Acute Mesenteric Ischemia. Libyan J. Med. 2013, 8, 20596. [Google Scholar] [CrossRef]
- Kulu, R.; Akyildiz, H.; Akcan, A.; Oztürk, A.; Sozuer, E. Plasma Citrulline Measurement in the Diagnosis of Acute Mesenteric Ischaemia. ANZ J. Surg. 2017, 87, E57–E60. [Google Scholar] [CrossRef]
- Nuzzo, A.; Guedj, K.; Curac, S.; Hercend, C.; Bendavid, C.; Gault, N.; Tran-Dinh, A.; Ronot, M.; Nicoletti, A.; Bouhnik, Y.; et al. Accuracy of Citrulline, I-FABP and D-Lactate in the Diagnosis of Acute Mesenteric Ischemia. Sci. Rep. 2021, 11, 18929. [Google Scholar] [CrossRef]
- Dundar, Z.D.; Cander, B.; Gul, M.; Karabulut, K.U.; Girisgin, S. Serum Ischemia-Modified Albumin Levels in an Experimental Acute Mesenteric Ischemia Model. Acad. Emerg. Med. 2010, 17, 1233–1238. [Google Scholar] [CrossRef]
- Sgourakis, G.; Papapanagiotou, A.; Kontovounisios, C.; Karamouzis, M.V.; Lanitis, S.; Konstantinou, C.; Karamouzis, M.V.; Lanitis, S.; Konstantinou, C.; Karaliotas, C.; et al. The Value of Plasma Neurotensin and Cytokine Measurement for the Detection of Bowel Ischaemia in Clinically Doubtful Cases: A Prospective Study. Exp. Biol. Med. 2013, 238, 874–878. [Google Scholar] [CrossRef]
- Salim, S.Y.; Young, P.Y.; Churchill, T.A.; Khadaroo, R.G. Urine Intestinal Fatty Acid-Binding Protein Predicts Acute Mesenteric Ischemia in Patients. J. Surg. Res. 2017, 209, 258–265. [Google Scholar] [CrossRef]
- Gunduz, A.; Turedi, S.; Mentese, A.; Karahan, S.C.; Hos, G.; Tatli, O.; Turan, I.; Ucar, U.; Russell, R.M.; Topbas, M. Ischemia-Modified Albumin in the Diagnosis of Acute Mesenteric Ischemia: A Preliminary Study. Am. J. Emerg. Med. 2008, 26, 202–205. [Google Scholar] [CrossRef]
- Polk, J.D.; Rael, L.T.; Craun, M.L.; Mains, C.W.; Davis-Merritt, D.; Bar-Or, D. Clinical Utility of the Cobalt-Albumin Binding Assay in the Diagnosis of Intestinal Ischemia. J. Trauma 2008, 64, 42–45. [Google Scholar] [CrossRef]
- Gunduz, A.; Turkmen, S.; Turedi, S.; Mentese, A.; Yulug, E.; Ulusoy, H.; Karahan, S.C.; Topbas, M. Time-Dependent Variations in Ischemia-Modified Albumin Levels in Mesenteric Ischemia. Acad. Emerg. Med. 2009, 16, 539–543. [Google Scholar] [CrossRef]
- Uygun, M.; Yilmaz, S.; Pekdemir, M.; Duman, C.; Gürbüz, Y.S. The Diagnostic Value of Ischemia-Modified Albumin in a Rat Model of Acute Mesenteric Ischemia. Acad. Emerg. Med. 2011, 18, 355–359. [Google Scholar] [CrossRef]
- Acosta, S.; Nilsson, T.K.; Björck, M. D-Dimer Testing in Patients with Suspected Acute Thromboembolic Occlusion of the Superior Mesenteric Artery. Br. J. Surg. 2004, 91, 991–994. [Google Scholar] [CrossRef]
- Sit, M.; Aktas, G.; Yilmaz, E.E.; Tosun, M.; Terzi, E.H.; Alcelik, A. Serum Omentin Levels Predicts Mesenteric Ischemia. Bratisl. Lek. Listy 2015, 116, 173–176. [Google Scholar] [CrossRef]
- Chiu, Y.H.; Huang, M.K.; How, C.K.; Hsu, T.F.; Chen, J.D.; Chern, C.H.; Yen, D.H.; Huang, C.I. D-Dimer in Patients with Suspected Acute Mesenteric Ischemia. Am. J. Emerg. Med. 2009, 27, 975–979. [Google Scholar] [CrossRef]
- Icoz, G.; Makay, O.; Sozbilen, M.; Gurcu, B.; Caliskan, C.; Firat, O.; Kurt, Z.; Ersin, S. Is D-Dimer a Predictor of Strangulated Intestinal Hernia? World J. Surg. 2006, 30, 2165–2169. [Google Scholar] [CrossRef]
- Block, T.; Nilsson, T.K.; Björck, M.; Acosta, S. Diagnostic Accuracy of Plasma Biomarkers for Intestinal Ischaemia. Scand. J. Clin. Lab. Investig. 2008, 68, 242–248. [Google Scholar] [CrossRef]
- Akyildiz, H.; Akcan, A.; Oztürk, A.; Sozuer, E.; Kucuk, C.; Karahan, I. The Correlation of the D-Dimer Test and Biphasic Computed Tomography with Mesenteric Computed Tomography Angiography in the Diagnosis of Acute Mesenteric Ischemia. Am. J. Surg. 2009, 197, 429–433. [Google Scholar] [CrossRef]
- Gün, B.; Yolcu, S.; Değerli, V.; Elçin, G.; Tomruk, Ö.; Erdur, B.; Parlak, İ. Multidetector Angio-CT and the Use of D-Dimer for the Diagnosis of Acute Mesenteric Ischemia in Geriatric Patients. Ulus Travma Ve Acil Cerrahi Derg Turk. J. Trauma Emerg. Surg. TJTES 2014, 20, 376–381. [Google Scholar] [CrossRef]
- de Bruin, W.C.; Wagenmans, M.J.; Peters, W.H. Expression of Glutathione S-Transferase Alpha, P1-1 and T1-1 in the Human Gastrointestinal Tract. Jpn. J. Cancer Res. 2000, 91, 310–316. [Google Scholar] [CrossRef]
- Delaney, C.P.; O’Neill, S.; Manning, F.; Fitzpatrick, J.M.; Gorey, T.F. Plasma Concentrations of Glutathione S-Transferase Isoenzyme Are Raised in Patients with Intestinal Ischaemia. Br. J. Surg. 1999, 86, 1349–1353. [Google Scholar] [CrossRef]
- Elshoura, A.A.F.; Ibrahim, H.D.; Hazzaa, S.M.; Elshora, O.A.F.; Moussa, G.I. Diagnostic Value of α-Glutathione S-Transferase in Acute Mesenteric Ischemia. J. Surg. 2018, 6, 107–111. [Google Scholar] [CrossRef]
- Bala, M.; Catena, F.; Kashuk, J.; De Simone, B.; Gomes, C.A.; Weber, D.; Sartelli, M.; Coccolini, F.; Kluger, Y.; Abu-Zidan, F.M.; et al. Acute Mesenteric Ischemia: Updated Guidelines of the World Society of Emergency Surgery. World J. Emerg. Surg. 2022, 17, 54. [Google Scholar] [CrossRef]
- Sun, D.L.; Li, S.M.; Cen, Y.Y.; Xu, Q.W.; Li, Y.J.; Sun, Y.B.; Qi, Y.-X.; Lin, Y.-Y.; Yang, T.; An, L.-Y.; et al. Accuracy of Using Serum D-Dimer for Diagnosis of Acute Intestinal Ischemia: A Meta-Analysis. Medicine 2017, 96, e6380. [Google Scholar] [CrossRef]
- Miura, S.; Kurose, I.; Fukumura, D.; Suematsu, M.; Sekizuka, E.; Tashiro, H.; Serizawa, H.; Asako, H.; Tsuchiya, M. Ischemic Bowel Necrosis Induced by Endothelin-1: An Experimental Model in Rats. Digestion 1991, 48, 163–172. [Google Scholar] [CrossRef]
- Ludewig, S.; Jarbouh, R.; Ardelt, M.; Mothes, H.; Rauchfuß, F.; Fahrner, R.; Zanow, J.; Settmacher, U. Bowel Ischemia in ICU Patients: Diagnostic Value of I-FABP Depends on the Interval to the Triggering Event. Gastroenterol. Res. Pract. 2017, 2017, 2795176. [Google Scholar] [CrossRef]
- Peoc’h, K.; Nuzzo, A.; Guedj, K.; Paugam, C.; Corcos, O. Diagnosis Biomarkers in Acute Intestinal Ischemic Injury: So Close, Yet So Far. Clin. Chem. Lab. Med. 2018, 56, 373–385. [Google Scholar] [CrossRef]
Marker | Authors (Year) | Number of Patients | AU-ROC | Threshold (Unit) | Sensitivity (%) | Specificity (%) | PPV (%) | NPV (%) |
---|---|---|---|---|---|---|---|---|
Endothelin-1 | Groesdonk et al. (2015) | 865 | 0.77 | 14.5 pg/mL | 51 | 94 | NA | NA |
I-FABP | Bourcier et al. (2022) | 61 | 0.83 | 3114 pg/mL | 70 | 85 | 90 | 58 |
Sekino et al. (2017) | 57 | 0.73 | 19 ng/mL | 61.5 | 86.4 | 57.1 | 88.4 | |
Matsumoto et al. (2019) | 96 | 0.805 | 15.5 ng/mL | 76 | 80.3 | 57.6 | 90.5 | |
Güzel et al. (2014) | 77 | NA | 90 pg/mL | 90 | 100 | 100 | 87 | |
Kanda et al. (2011) | 242 | 0.792 | 3.1 ng/ml | 78.8 | 73.8 | 33.6 | 95.4 | |
Serum lactate | Conde Monroy et al. (2022) | 74 | 0.805 | 3.8 ng/ml | 81 | 76 | NA | NA |
PCT | Nagata et al. (2008) | 93 | NR | 2 ng/mL | 100 | 83.9 | 27 | 100 |
Markogiannakis et al. (2011) | 242 | 0.77-ischemia 0.87-necrosis | 0.25 ng/mL | 72-ischemia 83-necrosis | 73-ischemia 78-necrosis | 60-ischemia 52-necrosis | 83-ischemia 95-necrosis | |
Cosse et al. (2013) | 166 | 0.91 | 0.57 ng/mL | 83.3 | 91.3 | 83.3 | 91.3 | |
Cosse et al. (2014) | 59 | 0.86 | 0.53 ng/mL | 80 | 84.8 | 40 | 90.7 | |
Citrulline | Kulu et al. (2017) | 48 | 0.72 | 15.8 µmol/L | 39 | 100 | 100 | 64 |
Nuzzo et al. (2021) | 129 | 0.67 | 16.6 µmol/L | 56 | 84 | 68 | 75 | |
IL-6 | Sgourakis et al. (2013) | 56 | 1 | 27.66 pg/mL | 100 | 100 | NR | NR |
Salim et al. (2017) | 20 | 0.85 | 0.04 ng/mL | 100 | 60 | NR | NR | |
IMA | Polk et al. (2008) | 26 | 0.946 | 0.35 ABSU | 100 | 86 | 100 | 85.7 |
Roy et al. (2004) | 131 | 0.78 | 93.5 U/mL | 75 | 74.6 | NR | NR | |
D-dimer | Chiu et al. (2009) | 67 | 0.64 | 1.0 μg FEU/mL | 96 | 18 | NR | NR |
Icoz et al. (2006) | 159 | NR | NR | 85 | 41 | NR | 94 | |
Block et al. (2008) | 71 | NA | 0.9 mg/L | 60 | 82 | 33 | 50 | |
Akyildiz et al. (2009) | 47 | 0.93 | 3.17 μg FEU/mL | 94.7 | 78.6 | 75 | 95.7 | |
Gün et al. (2014) | 676 | NR | 1000 ng/mL | 84.6 | 47.9 | NR | NR | |
Acosta et al. (2004) | 101 | NR | 0.3 mg/L | 100 | 36 | 13 | 100 | |
α-GST | Block et al. (2008) | 71 | NA | 4 ng/mL | 20 | 87 | 15 | 90 |
Delaney et al. (1999) | 26 | NR | 4 ng/mL | 100 | 86 | 86 | 100 | |
Elshoura et al. (2018) | 90 | NR | 4 ng/mL | 88.4 | 78.9 | 85.1 | 83.3 |
Author (Year) | Study Design and Number of Patients | Analyzed Biomarkers | Conclusions |
---|---|---|---|
Martin (2023) [18] | Retrospective study (n = 119) | Serum lactate | After multivariate analysis, there was no statistically significance of plasma lactate association with delayed diagnosis. |
Studer (2015) [17] | Retrospective study (n = 91) | Serum lactate | The highest serum lactate value measured within 24 h before surgery showed a moderate correlation, but no statistical significance with the length of bowel necrosis. |
Conde Monroy (2022) [16] | Retrospective cross-sectional study with a prospective database (n = 74) | Serum lactate | Serum lactate admission levels can be considered as a useful prognostic tool in term of mortality. No statistically significant correlation between SLAL and bowel necrosis length. |
Sekino (2017) [12] | Prospective observational study (n = 57) | I-FABP | I-FABP levels at ICU admission can serve as a predictor of 28-day mortality in septic shock patients and are associated with the incidence of NOMI. |
Bourcier (2022) [11] | Prospective observational study (61 patients) | I-FABP Citrulline | Elevated plasma I-FABP is associated with the diagnosis of intestinal necrosis. Increased survival when necrosis resection was performed. Citrulline levels were not statistically significant in predicting necrosis and outcome. |
Muhtaroğlu (2023) [28] | Retrospective study (n = 91) | FAR HGB CRP D-dimer WBC Neutrophils | The FAR ratio may be a valuable prognostic biomarker for patients with AMI. Pre- and postoperative levels of the following:
|
Destek (2020) [19] | Retrospective study (n = 44) | CRP L-lactate D-dimer WBC NLR | CRP level can be used effectively in the preoperative period to diagnose all etiological types of AMI. L-lactate, D-dimer, leukocyte, and NLR have no predictive value in the diagnosis of all AMI subtypes. |
Augène (2019) [29] | Retrospective study (n = 106) | NLR PLR | The PLR value at the in-hospital admission is a reliable and simple predictive factor of 30-day mortality in patients with AMI. NLR showed not to be statistically significant. |
Gunduz et al. (2008) [43] | Preliminary case control study | IMA | Statistically significant increases in IMA were observed in the occlusion group (n = 7) when compared to the control group (n = 7). |
Cosse (2015) [30] | Retrospective, multicenter study (n = 128) | Procalcitonin (PCT) | PCT could be used as a marker of necrosis; especially in case of extended damages and reflects the patient’s prognosis. |
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Mihaileanu, F.V.; Popa, S.L.; Grad, S.; Dumitrascu, D.I.; Ismaiel, A.; Rus, E.; Brata, V.D.; Padureanu, A.M.; Dita, M.O.; Turtoi, D.C.; et al. The Efficiency of Serum Biomarkers in Predicting the Clinical Outcome of Patients with Mesenteric Ischemia during Follow-Up: A Systematic Review. Diagnostics 2024, 14, 670. https://doi.org/10.3390/diagnostics14070670
Mihaileanu FV, Popa SL, Grad S, Dumitrascu DI, Ismaiel A, Rus E, Brata VD, Padureanu AM, Dita MO, Turtoi DC, et al. The Efficiency of Serum Biomarkers in Predicting the Clinical Outcome of Patients with Mesenteric Ischemia during Follow-Up: A Systematic Review. Diagnostics. 2024; 14(7):670. https://doi.org/10.3390/diagnostics14070670
Chicago/Turabian StyleMihaileanu, Florin Vasile, Stefan Lucian Popa, Simona Grad, Dinu Iuliu Dumitrascu, Abdulrahman Ismaiel, Eliza Rus, Vlad Dumitru Brata, Alexandru Marius Padureanu, Miruna Oana Dita, Daria Claudia Turtoi, and et al. 2024. "The Efficiency of Serum Biomarkers in Predicting the Clinical Outcome of Patients with Mesenteric Ischemia during Follow-Up: A Systematic Review" Diagnostics 14, no. 7: 670. https://doi.org/10.3390/diagnostics14070670
APA StyleMihaileanu, F. V., Popa, S. L., Grad, S., Dumitrascu, D. I., Ismaiel, A., Rus, E., Brata, V. D., Padureanu, A. M., Dita, M. O., Turtoi, D. C., Duse, T. A., Badulescu, A. V., Bottalico, P., Chiarioni, G., Pop, C., Mogosan, C., Barsan, M., Gherman, C. D., Stancu, B., & David, L. (2024). The Efficiency of Serum Biomarkers in Predicting the Clinical Outcome of Patients with Mesenteric Ischemia during Follow-Up: A Systematic Review. Diagnostics, 14(7), 670. https://doi.org/10.3390/diagnostics14070670