Glucose measurement in body fluids: A ready reckoner for clinicians

Suraj Kubihal1, Alpesh Goyal1, Yashdeep Gupta1, Rajesh Khadgawat1
1Department of Endocrinology and Metabolism, All India Institute of Medical Sciences, New Delhi, India

Tài liệu tham khảo

American Diabetes Association, 2020, 7. Diabetes technology: Standards of medical Care in diabetes-2020, Diabetes Care, 43, S77, 10.2337/dc20-S007 Petrie, 2017, Improving the clinical value and utility of CGM systems: issues and recommendations : a joint statement of the European association for the study of diabetes and the American diabetes association diabetes technology working group, Diabetologia, 60, 2319, 10.1007/s00125-017-4463-4 Fonseca, 2016, Consensus conference writing committee. Continuous glucose monitoring: a consensus conference of the American association of clinical Endocrinologists and American College of endocrinology, Endocr Pract, 22, 1008, 10.4158/EP161392.CS Turner, 1998, The U.K. Prospective diabetes study. A review, Diabetes Care, 21, C35, 10.2337/diacare.21.3.C35 Diabetes Control and Complications Trial Research Group, 1993, The effect of intensive treatment of diabetes on the development and progression of long-term complications in insulin-dependent diabetes mellitus, N Engl J Med, 329, 977, 10.1056/NEJM199309303291401 Masharani, 2011, Chapter 17. Pancreatic hormones and diabetes mellitus Folin, 1920, A system of blood analysis supplement I. A simplified and improved method for determination of sugar, J Biol Chem, 41, 367, 10.1016/S0021-9258(18)87198-8 Somogyi, 1952, Notes on sugar determination, J Biol Chem, 195, 19, 10.1016/S0021-9258(19)50870-5 Shaffer, 1935, Sugar determination by the ferricyanide electrode, J Biol Chem, 111, 707, 10.1016/S0021-9258(18)75017-5 Sacks, 2018, Carbohydrates, 518 Glucose Liqui-UV® (Hexokinase) Laboratory Procedure Manual Jain, 1996, How accurate is glucose analysis in the presence of multiple interfering substances in the neonate? (glucose analysis and interfering substances), J Clin Lab Anal, 10, 13, 10.1002/(SICI)1098-2825(1996)10:1<13::AID-JCLA3>3.0.CO;2-M Kadish, 1968, A new and rapid method for the determination of glucose by measurement of rate of oxygen consumption, Clin Chem, 14, 116, 10.1093/clinchem/14.2.116 Frias, 2010, Review of adverse events associated with false glucose readings measured by GDH-PQQ–based glucose test strips in the presence of interfering sugars, Diabetes Care, 33, 728, 10.2337/dc09-1822 Mathew, 2013, Erroneous glucose recordings while using mutant variant of quinoprotein glucose dehydrogenase glucometer in a child with galactosemia, Indian J Endocrinol Metab, 17, S289, 10.4103/2230-8210.119616 Heinemann, 2010, Quality of glucose measurement with blood glucose meters at the point-of-care: relevance of interfering factors, Diabetes Technol Therapeut, 12, 847, 10.1089/dia.2010.0076 Dogan, 2016, Falsely elevated glucose concentrations in peritoneal dialysis patients using icodextrin: falsely elevated glucose in peritoneal dialysis, J Clin Lab Anal, 30, 506, 10.1002/jcla.21887 Disse, 2004, Hypoglycemic coma in a diabetic patient on peritoneal dialysis due to interference of icodextrin metabolites with capillary blood glucose measurements, Diabetes Care, 27, 10.2337/diacare.27.9.2279 Attri, 2020, Basal-bolus insulin regimen for hospitalised patients with COVID-19 and diabetes mellitus: a practical approach, Diabetes Ther, 11, 2177, 10.1007/s13300-020-00873-3 Fda Perspective Kuwa, 2001, Relationships of glucose concentrations in capillary whole blood, venous whole blood and venous plasma, Clin Chim Acta Int J Clin Chem, 307, 187, 10.1016/S0009-8981(01)00426-0 Goyal, 2019, Pre-analytical factors in blood glucose measurement, Diabetes Res Clin Pract, 158, 107802, 10.1016/j.diabres.2019.107802 Mikesh, 2008, Stabilization of glucose in blood specimens: mechanism of delay in fluoride inhibition of glycolysis, Clin Chem, 54, 930, 10.1373/clinchem.2007.102160 Gambino, 2009, Acidification of blood is superior to sodium fluoride alone as an inhibitor of glycolysis, Clin Chem, 55, 1019, 10.1373/clinchem.2008.121707 Uchida, 1988, A new method of inhibiting glycolysis in blood samples, Clin Chim Acta Int J Clin Chem, 172, 101, 10.1016/0009-8981(88)90125-8 Tonyushkina, 2009, Glucose meters: a review of technical challenges to obtaining accurate results, J Diabetes Sci Technol Online, 3, 971 Clarke, 1987, Evaluating clinical accuracy of systems for self-monitoring of blood glucose, Diabetes Care, 10, 622, 10.2337/diacare.10.5.622 Parkes, 2000, A new consensus error grid to evaluate the clinical significance of inaccuracies in the measurement of blood glucose, Diabetes Care, 23, 1143, 10.2337/diacare.23.8.1143 International Standards Organization Klonoff, 2014, Point-of-Care blood glucose meter accuracy in the hospital setting, Diabetes Spectr, 27, 174, 10.2337/diaspect.27.3.174 Kotwal, 2012, Variability of capillary blood glucose monitoring measured on home glucose monitoring devices, Indian J Endocrinol Metab, 16, S248, 10.4103/2230-8210.104052 Ginsberg, 2009, Factors affecting blood glucose monitoring: sources of errors in measurement, J Diabetes Sci Technol Online, 3, 903 Mortazavi, 2014, Electromagnetic radiofrequency radiation emitted from GSM mobile phones decreases the accuracy of home blood glucose monitors, J Biomed Phys Eng, 4, 111 Ajjan, 2019, Continuous glucose monitoring: a brief review for primary care practitioners, Adv Ther, 36, 579, 10.1007/s12325-019-0870-x Shah, 2018, Performance of a factory-calibrated real-time continuous glucose monitoring system utilizing an automated sensor applicator, Diabetes Technol Therapeut, 20, 428, 10.1089/dia.2018.0143 Guardian Sensor 3 Battelino, 2019, Clinical targets for continuous glucose monitoring data interpretation: recommendations from the international consensus on time in range, Diabetes Care, 42, 1593, 10.2337/dci19-0028 Beck, 2019, The relationships between time in range, hyperglycemia metrics, and HbA1c, J Diabetes Sci Technol, 13, 614, 10.1177/1932296818822496 Vigersky, 2019, The relationship of hemoglobin A1C to time-in-range in patients with diabetes, Diabetes Technol Therapeut, 21, 81, 10.1089/dia.2018.0310 Maiorino, 2020, Effects of continuous glucose monitoring on metrics of glycemic control in diabetes: a systematic review with meta-analysis of randomized controlled trials, Diabetes Care, 43, 1146, 10.2337/dc19-1459 Juvenile Diabetes Research Foundation Continuous Glucose Monitoring Study Group, 2008, Continuous glucose monitoring and intensive treatment of type 1 diabetes, N Engl J Med, 359, 1464, 10.1056/NEJMoa0805017 Juvenile Diabetes Research Foundation Continuous Glucose Monitoring Study Group, 2010, Quality-of-life measures in children and adults with type 1 diabetes: juvenile diabetes Research foundation continuous glucose monitoring randomized trial, Diabetes Care, 33, 2175, 10.2337/dc10-0331 Polonsky, 2017, The impact of continuous glucose monitoring on markers of quality of life in adults with type 1 diabetes: further findings from the DIAMOND randomized clinical trial, Diabetes Care, 40, 736, 10.2337/dc17-0133 Kubiak, 2016, Psychosocial aspects of continuous glucose monitoring, J Diabetes Sci Technol, 10, 859, 10.1177/1932296816651450 Patton, 2016, Psychological reactions associated with continuous glucose monitoring in youth, J Diabetes Sci Technol, 10, 656, 10.1177/1932296816638109 Singh, 2019, Evidence-based consensus on positioning of SGLT2i in type 2 diabetes mellitus in Indians, Diabetes Ther, 10, 393, 10.1007/s13300-019-0562-1 Morris, 1981, Correlation between plasma and urine glucose in diabetes, Ann Intern Med, 94, 469, 10.7326/0003-4819-94-4-469 Fedele, 2003, Alternative site blood glucose testing: a multicenter study, Diabetes Technol Therapeut, 5, 983, 10.1089/152091503322641033 Olateju, 2012, Effects of simulated altitude on blood glucose meter performance: implications for in-flight blood glucose monitoring, J Diabetes Sci Technol, 6, 867, 10.1177/193229681200600418