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Could we diagnose childhood asthma by LIBS technique?

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Abstract

Asthma affects children related to trace elements. Our aim was to investigate the levels of trace elements using laser-induced breakdown spectroscopy (LIBS). The study included 120 children aged 4–12 years from both sexes. They were divided into three groups: Group 1 of 40 children was diagnosed as cases of controlled asthma. Group 2 consisted of 40 children diagnosed as cases of uncontrolled asthma. Group 3 consisted of 40 children as normal control. Asthmatic children were classified according to GINA 2015. They were analyzed for serum levels of total IgE, eosinophil count, and trace metals (Zn, Cu, Pb, Mg, and Fe) by using LIBS. There was significant decrease in serum levels of Zn, Mg and Fe in children with asthma than in normal children. There was a significant decrease in uncontrolled asthmatic children than in controlled asthmatic children. But the Cu and Pb concentration in children with asthma was significantly higher than that in normal children, and there was a significant increase in uncontrolled asthmatic children than in controlled asthmatic children. Furthermore, we examined the peak flow meter, eosinophil count, and total IgE and found that the peak flow metric study had shown a significant difference in controlled cases, total eosinophil count, and IgE; the difference was more significant in the uncontrolled group than in the controlled group, and the total levels were higher in the uncontrolled group. Asthma is a common pediatric disease that is related to deficiency of Fe, Zn, and Mg and occurs with increased Pb and Cu. LIBS is a safe and rapid technique that helps in detecting asthma.

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References

  1. Global Initiative for asthma - GINA (2018) Global strategy for asthma management and prevention, available at www.Ginasthma.org. Accessed 27 June

  2. Licari A, Brambilla I, Marseglia A, De Filippo M, Paganelli V, Marseglia GL (2018) Difficult vs. severe asthma: definition and limits of asthma control in the pediatric population. Front Pediatr 6:170

    PubMed  PubMed Central  Google Scholar 

  3. The Global Asthma Report Auckland: Global Asthma Network (GAN) available at: www.globalasthmanetwork.org/publications/Global_Asthma_Report_2014. Accessed 27 June

  4. Jaramillo Y, Reznik M (2015) Do United States’ teachers know and adhere to the national guidelines on asthma management in the classroom? A systematic review. Sci World J 2015:624828

    Google Scholar 

  5. El Mohammed M, Sherbeny OG, Behairy OG, Mohammad OI, Elsayed AM (2016) Serum levels of lead and copper in a group of Egyptian children with bronchial asthma. Egypt J Pediatr Allergy Immunol 14(2):47–52

    Google Scholar 

  6. Ullah R, Khan S, Farman F, Bilal M, Krafft C, Shahzad S (2019) Demonstrating the application of Raman spectroscopy together with chemometric technique for screening of asthma disease. Biomed Opt Exp 10(2):600–609

    CAS  Google Scholar 

  7. Zamora-Mendoza BN, Espinosa-Tanguma R, Ramírez-Elías MG, Cabrera-Alonso R, Montero-Moran G, Portales-Pérez D, Rosales-Romo JA, Gonzalez Francisco J, Gonzalez C (2019) Surface-enhanced raman spectroscopy: a non invasive alternative procedure for early detection in childhood asthma biomarkers in saliva. Photodiagn Photodyn Ther

  8. Harmon RS, Russo RE, Hark R (2013) A review of the application of laser-induced breakdown spectroscopy (LIBS)for geochemical and environmental analysis. Spectrochim Acta B At Spectrosc (87):11–26

  9. Anabitarte F, Cobo A, Lopez-Higuera JM (2012) Laser-induced breakdown spectroscopy: fundamentals, applications, and challenges. ISRN Spectrosc. Article ID 285240, 12 pages

  10. Mao S, Wu L, Shi W (2018) Association between trace elements levels and asthma susceptibility. Respir Med 145:110–119

    PubMed  Google Scholar 

  11. Schatz M, Clark S, Camargo CA Jr (2006) Sex differences in the presentation and course of asthma hospitalizations. Chest. 129(1):50–55

    PubMed  Google Scholar 

  12. Kamfar HZ, Koshak EE (2002) The impact of some demographic factors on the severity of asthma in children. J Fam Commun Med 9(1):19–24

    Google Scholar 

  13. Borgmeyer AE, Strunk RC IV, Niesen A (2015) The relationship between age, weight and asthma severity in children admitted to the hospital with asthma. J Allergy Clin Immunol 135(2):AB241

    Google Scholar 

  14. Lu KD, John B, Ronen B-Y, Shlomit R-A, Cooper D, Hoda A-C (2016) Sex differences in the relationship between fitness and obesity on risk for asthma in adolescents. J Pediatr 176:36–42

    PubMed  PubMed Central  Google Scholar 

  15. López Blázquez M, Pérez Moreno J, Vigil Vázquez S, Rodríguez Fernández R (2018) Impact of passive smoking on lung function and asthma severity in children. Arch Bronconeumol 54(8):436–437

    PubMed  Google Scholar 

  16. Burke W, Fesinmeyer M, Reed K, Hampson L, Carlsten C (2003) Family history as a predictor of asthma risk. Am J Prev Med 24(2):160–169

    PubMed  Google Scholar 

  17. Liu T, Valdez R, Yoon PW, Crocker D, Moonesinghe R, Khoury MJ (2009) The association between family history of asthma and the prevalence of asthma among US adults: National Health and Nutrition Examination Survey, 1999-2004. Genet Med 11(5):323–328

    PubMed  Google Scholar 

  18. Brigham EP, McCormack MC, Takemoto CM, Matsui EC (2015) Iron status is associated with asthma and lung function in US women. PLoS One 10(2)

    PubMed  PubMed Central  Google Scholar 

  19. Elsayed WA, Alkalyouby SH, Essa E (2017) Serum lead, copper and zinc in children with bronchial asthma ZUMJ. 23:1–11

  20. El Sherbeny MM, Behairy OG, Mohammad OI, Ahmad M (2016) Elsayed: serum levels of lead and copper in a group of Egyptian children with bronchial asthma. Egypt J Pediatr Allergy Immunol 14(2):47–52

    Google Scholar 

  21. Al-Jeffery MO, Telle HH (2002) LIBS and LIFS for rapid detection of Rb traces in blood. Proc. SPIE 4613, Optical Biopsy IV

  22. Abdel-Salam Z, Al Sharnoubi J, Harith MA (2013) Qualitative evaluation of maternal milk and commercial infant formulas via LIBS. Talanta 115:422–426

    CAS  PubMed  Google Scholar 

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Correspondence to Jehan Alsharnoubi.

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All parents of the children included in the study provided a written informed consent prior to the study. This current study was approved by the local ethical committee in accordance with the ethical standards laid down in the 1964 Declaration of Helsinki.

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Alsharnoubi, J., Alkharbotly, A., Waheed, H. et al. Could we diagnose childhood asthma by LIBS technique?. Lasers Med Sci 35, 807–812 (2020). https://doi.org/10.1007/s10103-019-02866-6

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  • DOI: https://doi.org/10.1007/s10103-019-02866-6

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