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Published in: Annals of Hematology 10/2022

Open Access 15-07-2022 | Polymerase Chain Reaction | Original Article

Cut-off values for diagnosis of G6PD deficiency by flow cytometry in Thai population

Authors: Anchalee Thedsawad, Wanchai Wanachiwanawin, Orathai Taka, Chattree Hantaweepant

Published in: Annals of Hematology | Issue 10/2022

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Abstract

In heterozygous females, X-inactivation causes a change in glucose-6-phosphate dehydrogenase (G6PD) activity from normal to deficient. Most G6PD screening tests are used to accurately diagnose hemizygous males, but they are less reliable for diagnosing heterozygous females. This study established flow cytometric cut-off values for screening of G6PD deficiency in hemizygous males and heterozygous or homozygous females. We studied 205 (125 females, 80 males) leftover blood samples from quantitative methemoglobin reduction (MR) screening. G6PD gene mutations determined by multiplex amplification refractory mutation system-polymerase chain reaction and direct DNA sequencing were used as the gold standard reference. Accuracy of the test, including the sensitivity, specificity, and positive and negative predictive values, was analyzed using MedCalc software. The optimal cut-off values for classification of %red blood cells with normal G6PD activity or %bright cells into homozygous normal, heterozygous, and homozygous deficiency in females were 85.4–100%, 6.3–85.3%, and 0–6.2%, respectively (sensitivity 93.2%, specificity 100%). The cut-offs for classification into hemizygous normal and hemizygous deficiency in males were 76.5–100% and 0–76.4%, respectively (sensitivity 100%, specificity 96.5%). Flow cytometry can be used to differentiate heterozygous females with intermediate phenotype from homozygous females, but cannot distinguish between heterozygous females with extreme phenotype and homozygous females. By flow cytometry, heterozygous and homozygous deficiency was detected in 29.6% and 3.2% of females, respectively. Among males, hemizygous deficiency was found in 31.3%. Flow cytometry can be used to screen patients with G6PD deficiency, and reliably and efficiently identify heterozygous and homozygous females, and hemizygous males based on cellular G6PD activity.
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Literature
1.
go back to reference Peters AL, Van Noorden CJ (2009) Glucose-6-phosphate dehydrogenase deficiency and malaria: cytochemical detection of heterozygous G6PD deficiency in women. J Histochem Cytochem 57(11):1003–1011CrossRef Peters AL, Van Noorden CJ (2009) Glucose-6-phosphate dehydrogenase deficiency and malaria: cytochemical detection of heterozygous G6PD deficiency in women. J Histochem Cytochem 57(11):1003–1011CrossRef
2.
go back to reference Charoenkwan P, Tantiprabha W, Sirichotiyakul S, Phusua A, Sanguansermsri T (2014) Prevalence and molecular characterization of glucose-6-phosphate dehydrogenase deficiency in northern Thailand. Southeast Asian J Trop Med Public Health 45(1):187–193PubMed Charoenkwan P, Tantiprabha W, Sirichotiyakul S, Phusua A, Sanguansermsri T (2014) Prevalence and molecular characterization of glucose-6-phosphate dehydrogenase deficiency in northern Thailand. Southeast Asian J Trop Med Public Health 45(1):187–193PubMed
3.
go back to reference Nuchprayoon I, Sanpavat S, Nuchprayoon S (2002) Glucose-6-phosphate dehydrogenase (G6PD) mutations in Thailand: G6PD Viangchan (871 G > A) is the most common deficient variant in the Thai population. Hum mutat 19:185CrossRef Nuchprayoon I, Sanpavat S, Nuchprayoon S (2002) Glucose-6-phosphate dehydrogenase (G6PD) mutations in Thailand: G6PD Viangchan (871 G > A) is the most common deficient variant in the Thai population. Hum mutat 19:185CrossRef
4.
go back to reference Phompradit P, Kuesap J, Chaijaroenkul W, Rueangweerayut R, Hongkaew Y, Yamnuan R, Na-Bangchang K (2011) Prevalence and distribution of glucose-6-phosphate dehydrogenase (G6PD) variants in Thai and Burmese populations in malaria endemic areas of Thailand. Malar J 10:368CrossRef Phompradit P, Kuesap J, Chaijaroenkul W, Rueangweerayut R, Hongkaew Y, Yamnuan R, Na-Bangchang K (2011) Prevalence and distribution of glucose-6-phosphate dehydrogenase (G6PD) variants in Thai and Burmese populations in malaria endemic areas of Thailand. Malar J 10:368CrossRef
5.
go back to reference World Health Organization (2016) Testing for G6PD deficiency for safe use of primaquine in radical cure of P.vivax and P.ovale: Policy brief. World Health Organization, Geneva, Switzerland World Health Organization (2016) Testing for G6PD deficiency for safe use of primaquine in radical cure of P.vivax and P.ovale: Policy brief. World Health Organization, Geneva, Switzerland
6.
go back to reference Zaffanello M, Rugolotto S, Zamboni G, Gaudino R, Tatò L (2004) Neonatal screening for glucose-6-phosphate dehydrogenase deficiency fails to detect heterozygote females. Eur J Epidemiol 19(3):255–257CrossRef Zaffanello M, Rugolotto S, Zamboni G, Gaudino R, Tatò L (2004) Neonatal screening for glucose-6-phosphate dehydrogenase deficiency fails to detect heterozygote females. Eur J Epidemiol 19(3):255–257CrossRef
7.
go back to reference Kahn M, Ward WHJ, LaRue N, Kalnoky M, Pal S, Domingo GJ (2015) Maintaining specimen integrity for G6PD screening by cytofluorometric assays. J Histochem Cytochem 63(6):454–458CrossRef Kahn M, Ward WHJ, LaRue N, Kalnoky M, Pal S, Domingo GJ (2015) Maintaining specimen integrity for G6PD screening by cytofluorometric assays. J Histochem Cytochem 63(6):454–458CrossRef
8.
go back to reference LaRue N, Kahn M, Murray M, Leader BT, Bansil P, McGray S, Kalnoky M, Zhang H, Huang H, Jiang H, Domingo GJ (2014) Comparison of quantitative and qualitative tests for glucose-6-phosphate dehydrogenase deficiency. Am J Trop Med Hyg 91(4):854–861CrossRef LaRue N, Kahn M, Murray M, Leader BT, Bansil P, McGray S, Kalnoky M, Zhang H, Huang H, Jiang H, Domingo GJ (2014) Comparison of quantitative and qualitative tests for glucose-6-phosphate dehydrogenase deficiency. Am J Trop Med Hyg 91(4):854–861CrossRef
9.
go back to reference Nantakomol D, Paul R, Palasuwan A, Day NP, White NJ, Imwong M (2013) Evaluation of the phenotypic test and genetic analysis in the detection of glucose-6-phosphate dehydrogenase deficiency. Malar J 12:289CrossRef Nantakomol D, Paul R, Palasuwan A, Day NP, White NJ, Imwong M (2013) Evaluation of the phenotypic test and genetic analysis in the detection of glucose-6-phosphate dehydrogenase deficiency. Malar J 12:289CrossRef
10.
go back to reference Reclos GJ, Hatzidakis CJ, Schulpis KH (2000) Glucose-6-phosphate dehydrogenase deficiency neonatal screening: preliminary evidence that a high percentage of partially deficient female neonates are missed during routine screening. J Med Screen 7(1):46–51CrossRef Reclos GJ, Hatzidakis CJ, Schulpis KH (2000) Glucose-6-phosphate dehydrogenase deficiency neonatal screening: preliminary evidence that a high percentage of partially deficient female neonates are missed during routine screening. J Med Screen 7(1):46–51CrossRef
11.
go back to reference Kalnoky M, Bancone G, Kahn M, Chu CS, Chowwiwat N, Wilaisrisak P, Pal S, LaRue N, Leader B, Nosten F, Domingo GJ (2018) Cytochemical flow analysis of intracellular G6PD and aggregate analysis of mosaic G6PD expression. Eur J Haematol 100(3):294–303CrossRef Kalnoky M, Bancone G, Kahn M, Chu CS, Chowwiwat N, Wilaisrisak P, Pal S, LaRue N, Leader B, Nosten F, Domingo GJ (2018) Cytochemical flow analysis of intracellular G6PD and aggregate analysis of mosaic G6PD expression. Eur J Haematol 100(3):294–303CrossRef
12.
go back to reference Shah SS, Diakite SA, Traore K, Diakite M, Kwiatkowski DP, Rockett KA, Wellems TE, Fairhurst RM (2012) A novel cytofluorometric assay for the detection and quantification of glucose-6-phosphate dehydrogenase deficiency. Sci Rep 2:299CrossRef Shah SS, Diakite SA, Traore K, Diakite M, Kwiatkowski DP, Rockett KA, Wellems TE, Fairhurst RM (2012) A novel cytofluorometric assay for the detection and quantification of glucose-6-phosphate dehydrogenase deficiency. Sci Rep 2:299CrossRef
13.
go back to reference Kahn M, LaRue N, Bansil P, Kalnoky M, McGray S, Domingo GJ (2013) Cryopreservation of glucose-6-phosphate dehydrogenase activity inside red blood cells: developing a specimen repository in support of development and evaluation of glucose-6-phosphate dehydrogenase deficiency tests. Malar J 12:286CrossRef Kahn M, LaRue N, Bansil P, Kalnoky M, McGray S, Domingo GJ (2013) Cryopreservation of glucose-6-phosphate dehydrogenase activity inside red blood cells: developing a specimen repository in support of development and evaluation of glucose-6-phosphate dehydrogenase deficiency tests. Malar J 12:286CrossRef
14.
go back to reference Van Noorden CJ, Dolbeare F, Aten J (1989) Flow cytofluorometric analysis of enzyme reactions based on quenching of fluorescence by the final reaction product: detection of glucose-6-phosphate dehydrogenase deficiency in human erythrocytes. J Histochem Cytochem 37(9):1313–1318CrossRef Van Noorden CJ, Dolbeare F, Aten J (1989) Flow cytofluorometric analysis of enzyme reactions based on quenching of fluorescence by the final reaction product: detection of glucose-6-phosphate dehydrogenase deficiency in human erythrocytes. J Histochem Cytochem 37(9):1313–1318CrossRef
15.
go back to reference Du CS, Ren X, Chen L, Jiang W, He Y, Yang M (1999) Detection of the most common G6PD gene mutations in Chinese using amplification refractory mutation system. Hum Hered 49(3):133–138CrossRef Du CS, Ren X, Chen L, Jiang W, He Y, Yang M (1999) Detection of the most common G6PD gene mutations in Chinese using amplification refractory mutation system. Hum Hered 49(3):133–138CrossRef
16.
go back to reference McDade J, Abramova T, Mortier N, Howard T, Ware RE (2008) A novel G6PD mutation leading to chronic hemolytic anemia. Pediatr Blood Cancer 51(6):816–819CrossRef McDade J, Abramova T, Mortier N, Howard T, Ware RE (2008) A novel G6PD mutation leading to chronic hemolytic anemia. Pediatr Blood Cancer 51(6):816–819CrossRef
17.
go back to reference Chaowanathikhom M, Nuchnoi P, Palasuwan D (2017) Significance of 3′UTR and pathogenic haplotype in glucose-6-phosphate deficiency. Lab Med 48(1):73–88CrossRef Chaowanathikhom M, Nuchnoi P, Palasuwan D (2017) Significance of 3′UTR and pathogenic haplotype in glucose-6-phosphate deficiency. Lab Med 48(1):73–88CrossRef
18.
go back to reference Singhamatr P, Wanotayan R, Suwanjunee S, Phudharaksa T, Laibua B, Meekaewkuhchorn A (2009) Biochemical and molecular analysis of glucose-6-phosphate dehydrogenase in red blood cells. Thai Pediatr J. 16(3):157–165 Singhamatr P, Wanotayan R, Suwanjunee S, Phudharaksa T, Laibua B, Meekaewkuhchorn A (2009) Biochemical and molecular analysis of glucose-6-phosphate dehydrogenase in red blood cells. Thai Pediatr J. 16(3):157–165
19.
go back to reference Laosombat V, Sattayasevana B, Janejindamai W, Viprakasit V, Shirakawa T, Nishiyama K, Matsuo M (2005) Molecular heterogeneity of glucose-6-phosphate dehydrogenase (G6PD) variants in the south of Thailand and identification of a novel variant (G6PD Songklanagarind). Blood Cells Mol Dis 34(2):191–196CrossRef Laosombat V, Sattayasevana B, Janejindamai W, Viprakasit V, Shirakawa T, Nishiyama K, Matsuo M (2005) Molecular heterogeneity of glucose-6-phosphate dehydrogenase (G6PD) variants in the south of Thailand and identification of a novel variant (G6PD Songklanagarind). Blood Cells Mol Dis 34(2):191–196CrossRef
20.
go back to reference Ninokata A, Kimura R, Samakkarn U, Settheetham-Ishida W, Ishida T (2006) Coexistence of five G6PD variants indicates ethnic complexity of Phuket islanders, Southern Thailand. J Hum Genet 51(5):424–428CrossRef Ninokata A, Kimura R, Samakkarn U, Settheetham-Ishida W, Ishida T (2006) Coexistence of five G6PD variants indicates ethnic complexity of Phuket islanders, Southern Thailand. J Hum Genet 51(5):424–428CrossRef
21.
go back to reference Kawamoto F, Matsuoka H, Pham NM, Hayashi T, Kasahara Y, Dung NT, Kido Y, Kanbe T, Tantular IS (2017) Further molecular analysis of G6PD deficiency variants in Southern Vietnam and a novel variant designated as G6PD Ho Chi Minh (173 A>G; 58 Asp>Gly): frequency distributions of variants compared with those in other Southeast Asian countries. Acta Med Okayama 71(4):325–332PubMed Kawamoto F, Matsuoka H, Pham NM, Hayashi T, Kasahara Y, Dung NT, Kido Y, Kanbe T, Tantular IS (2017) Further molecular analysis of G6PD deficiency variants in Southern Vietnam and a novel variant designated as G6PD Ho Chi Minh (173 A>G; 58 Asp>Gly): frequency distributions of variants compared with those in other Southeast Asian countries. Acta Med Okayama 71(4):325–332PubMed
22.
go back to reference Yu GL, Jiang WY, Du CS, Lin QD, Chen LM, Tian QH, Li SG, Zeng JB (2004) [Complex mutations of 1311 C-->T in exon 11 and 93 T-->C in intron 11 in G6PD gene]. Zhonghua Xue Ye Xue Za Zhi 25(10):610-612. Yu GL, Jiang WY, Du CS, Lin QD, Chen LM, Tian QH, Li SG, Zeng JB (2004) [Complex mutations of 1311 C-->T in exon 11 and 93 T-->C in intron 11 in G6PD gene]. Zhonghua Xue Ye Xue Za Zhi 25(10):610-612.
23.
go back to reference Jiang W, Yu G, Liu P, Geng Q, Chen L, Lin Q, Ren X, Ye W, He Y, Guo Y, Duan S, Wen J, Li H, Qi Y, Jiang C, Zheng Y, Liu C, Si E, Zhang Q et al (2006) Structure and function of glucose-6-phosphate dehydrogenase-deficient variants in Chinese population. Hum Genet 119(5):463CrossRef Jiang W, Yu G, Liu P, Geng Q, Chen L, Lin Q, Ren X, Ye W, He Y, Guo Y, Duan S, Wen J, Li H, Qi Y, Jiang C, Zheng Y, Liu C, Si E, Zhang Q et al (2006) Structure and function of glucose-6-phosphate dehydrogenase-deficient variants in Chinese population. Hum Genet 119(5):463CrossRef
24.
go back to reference Bendaoud B, Hosni I, Mosbahi I, Hafsia R, Prehu C, Abbes S (2013) Three new mutations account for the prevalence of glucose 6 phosphate deshydrogenase (G6PD) deficiency in Tunisia. Pathol Biol (Paris) 61(2):64–69CrossRef Bendaoud B, Hosni I, Mosbahi I, Hafsia R, Prehu C, Abbes S (2013) Three new mutations account for the prevalence of glucose 6 phosphate deshydrogenase (G6PD) deficiency in Tunisia. Pathol Biol (Paris) 61(2):64–69CrossRef
25.
go back to reference Menounos PG, Garinis GA, Patrinos GP (2003) Glucose-6-phosphate dehydrogenase deficiency does not result from mutations in the promoter region of the G6PD gene. J Clin Lab Anal 17(3):90–92CrossRef Menounos PG, Garinis GA, Patrinos GP (2003) Glucose-6-phosphate dehydrogenase deficiency does not result from mutations in the promoter region of the G6PD gene. J Clin Lab Anal 17(3):90–92CrossRef
26.
go back to reference Toniolo D, Martini G, Migeon BR, Dono R (1988) Expression of the G6PD locus on the human X chromosome is associated with demethylation of three CpG islands within 100 kb of DNA. Embo J 7(2):401–406CrossRef Toniolo D, Martini G, Migeon BR, Dono R (1988) Expression of the G6PD locus on the human X chromosome is associated with demethylation of three CpG islands within 100 kb of DNA. Embo J 7(2):401–406CrossRef
27.
go back to reference Puck JM, Willard HF (1998) X inactivation in females with X-linked disease. N Engl J Med 338(5):325–328CrossRef Puck JM, Willard HF (1998) X inactivation in females with X-linked disease. N Engl J Med 338(5):325–328CrossRef
28.
go back to reference Chu CS, Bancone G, Nosten F, White NJ, Luzzatto L (2018) Primaquine-induced haemolysis in females heterozygous for G6PD deficiency. Malar J 17(1):101CrossRef Chu CS, Bancone G, Nosten F, White NJ, Luzzatto L (2018) Primaquine-induced haemolysis in females heterozygous for G6PD deficiency. Malar J 17(1):101CrossRef
29.
go back to reference Noori-Daloii M, Daneshpajooh M (2008) Molecular basis of G6PD deficiency: current status and its perspective. Acta Medica Iranica 46(3):167–182 Noori-Daloii M, Daneshpajooh M (2008) Molecular basis of G6PD deficiency: current status and its perspective. Acta Medica Iranica 46(3):167–182
30.
go back to reference Bancone G, Kalnoky M, Chu CS, Chowwiwat N, Kahn M, Malleret B, Wilaisrisak P, Rénia L, Domingo GJ, Nosten F (2017) The G6PD flow-cytometric assay is a reliable tool for diagnosis of G6PD deficiency in women and anaemic subjects. Sci Rep 7(1):9822CrossRef Bancone G, Kalnoky M, Chu CS, Chowwiwat N, Kahn M, Malleret B, Wilaisrisak P, Rénia L, Domingo GJ, Nosten F (2017) The G6PD flow-cytometric assay is a reliable tool for diagnosis of G6PD deficiency in women and anaemic subjects. Sci Rep 7(1):9822CrossRef
Metadata
Title
Cut-off values for diagnosis of G6PD deficiency by flow cytometry in Thai population
Authors
Anchalee Thedsawad
Wanchai Wanachiwanawin
Orathai Taka
Chattree Hantaweepant
Publication date
15-07-2022
Publisher
Springer Berlin Heidelberg
Published in
Annals of Hematology / Issue 10/2022
Print ISSN: 0939-5555
Electronic ISSN: 1432-0584
DOI
https://doi.org/10.1007/s00277-022-04923-7

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