Direct hemoperfusion using a polymyxin B-immobilized polystyrene column for COVID-19.
Adult
Aged
Aged, 80 and over
Arteries
/ metabolism
Biomarkers
/ urine
Blood Gas Analysis
COVID-19
/ therapy
Cytokines
/ blood
Endothelium, Vascular
/ metabolism
Female
Hemoperfusion
/ instrumentation
Hospitalization
Humans
Male
Middle Aged
Oxygen
/ metabolism
Polymyxin B
/ chemistry
Polystyrenes
/ chemistry
Respiration, Artificial
Retrospective Studies
Risk
beta 2-Microglobulin
/ urine
cytokine
pneumonia
steroids
Journal
Journal of clinical apheresis
ISSN: 1098-1101
Titre abrégé: J Clin Apher
Pays: United States
ID NLM: 8216305
Informations de publication
Date de publication:
Jun 2021
Jun 2021
Historique:
revised:
09
09
2020
received:
09
06
2020
accepted:
13
11
2020
pubmed:
17
12
2020
medline:
8
7
2021
entrez:
16
12
2020
Statut:
ppublish
Résumé
To evaluate the efficacy and safety of direct hemoperfusion using a polymyxin B-immobilized polystyrene column (PMX-DHP) in severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2)-positive pneumonia patients. This study was a case series conducted at a designated infectious diseases hospital. Twelve SARS-CoV-2-positive patients with partial pressure of arterial oxygen/percentage of inspired oxygen (P/F) ratio < 300 were treated with PMX-DHP on two consecutive days each during hospitalization. We defined day 1 as the first day when PMX-DHP was performed. PMX-DHP efficacy was assessed on days 7 and 14 after the first treatment based on eight categories. Subsequently, improvement in P/F ratio and urinary biomarkers on days 4 and 8, malfunctions, and ventilator and extracorporeal membrane oxygenation avoidance rates were also evaluated. On day 14 after the first treatment, disease severity decreased in 58.3% of the patients. P/F ratio increased while urine β2-microglobulin decreased on days 4 and 8. Cytokine measurement pre- and post-PMX-DHP revealed decreased levels of interleukin-6 and the factors involved in vascular endothelial injury, including vascular endothelial growth factor. Twenty-two PMX-DHPs were performed, of which seven and five PMX-DHPs led to increased inlet pressure and membrane coagulation, respectively. When the membranes coagulated, the circuitry needed to be reconfigured. Circuit problems were usually observed when D-dimer and fibrin degradation product levels were high before PMX-DHP. Future studies are expected to determine the therapeutic effect of PMX-DHP on COVID-19. Because of the relatively high risk of circuit coagulation, coagulation capacity should be assessed beforehand.
Identifiants
pubmed: 33325084
doi: 10.1002/jca.21861
pmc: PMC8246724
doi:
Substances chimiques
Biomarkers
0
Cytokines
0
Polystyrenes
0
beta 2-Microglobulin
0
Polymyxin B
J2VZ07J96K
Oxygen
S88TT14065
Types de publication
Journal Article
Observational Study
Langues
eng
Sous-ensembles de citation
IM
Pagination
313-321Subventions
Organisme : Grants-in-Aid for Research from the National Center for Global Health and Medicine
ID : 20A-3002
Organisme : Japan Agency for Medical Research and Development
ID : 20he0822003j0001
Informations de copyright
© 2020 The Authors. Journal of Clinical Apheresis published by Wiley Periodicals LLC.
Références
Circ Res. 2020 May 8;126(10):1456-1474
pubmed: 32264791
Lancet Respir Med. 2020 Apr;8(4):420-422
pubmed: 32085846
Intern Med. 2012;51(12):1487-91
pubmed: 22728479
Acta Med Okayama. 2009 Feb;63(1):65-9
pubmed: 19247424
Shock. 2009 May;31(5):454-9
pubmed: 18838948
Lancet Rheumatol. 2020 Jul;2(7):e437-e445
pubmed: 32835247
Crit Care. 2020 Jul 3;24(1):392
pubmed: 32620147
Shock. 2009 Nov;32(5):478-83
pubmed: 19295483
Blood Purif. 2010;29(4):321-6
pubmed: 20185904
Thromb Res. 2020 Jul;191:145-147
pubmed: 32291094
Clin Exp Immunol. 1987 Sep;69(3):632-8
pubmed: 2959413
JAMA. 2020 May 12;323(18):1824-1836
pubmed: 32282022
Am J Physiol Renal Physiol. 2009 Apr;296(4):F669-79
pubmed: 19019918
Crit Care. 2014 Jun 09;18(3):309
pubmed: 25043934
J Intensive Care. 2017 Feb 20;5:19
pubmed: 28239476
Ann Thorac Surg. 2012 Feb;93(2):577-83
pubmed: 22269724
Blood Purif. 2018;46(4):309-314
pubmed: 30099437
N Engl J Med. 2020 May 7;382(19):1787-1799
pubmed: 32187464
J Clin Apher. 2021 Jun;36(3):313-321
pubmed: 33325084
Clin Appl Thromb Hemost. 2017 Oct;23(7):838-843
pubmed: 27729561
Intensive Care Med. 2010 May;36(5):906-7
pubmed: 20224904
Lancet. 2020 May 2;395(10234):1417-1418
pubmed: 32325026
Intern Med. 2020 Oct 1;59(19):2405-2408
pubmed: 32863364
Crit Care Med. 2011 Nov;39(11):2464-9
pubmed: 21705884
Blood Purif. 2011;32(4):310-6
pubmed: 21893977
J Thromb Haemost. 2020 Apr;18(4):844-847
pubmed: 32073213
Am J Hematol. 2020 Jul;95(7):834-847
pubmed: 32282949
Viruses. 2020 Jun 10;12(6):
pubmed: 32532094
Crit Care Explor. 2020 Jul 31;2(8):e0170
pubmed: 32766565
Intensive Care Med. 2020 Apr;46(4):654-672
pubmed: 31820034
Clin J Am Soc Nephrol. 2016 Apr 7;11(4):593-601
pubmed: 26801478
Blood Purif. 2021;50(1):129-131
pubmed: 32526746
Blood Purif. 2011;32(2):75-81
pubmed: 21372564
Life Sci. 2020 Aug 1;254:117788
pubmed: 32475810
J Clin Virol. 2020 Jun;127:104362
pubmed: 32305883
Nat Rev Nephrol. 2020 Jun;16(6):308-310
pubmed: 32273593
Glob Health Med. 2020 Jun 30;2(3):190-192
pubmed: 33330806
J Infect. 2020 Jun;80(6):607-613
pubmed: 32283152
Proc Natl Acad Sci U S A. 2020 May 19;117(20):10970-10975
pubmed: 32350134
Respiration. 2011;81(4):318-24
pubmed: 20530959
Lancet. 2020 Mar 28;395(10229):1033-1034
pubmed: 32192578