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Lazer Taramalı Konfokal Mikroskobun Prensipleri ve Tıpta Kullanım Alanları

Yıl 2021, Cilt: 7 Sayı: 3, 457 - 462, 01.09.2021
https://doi.org/10.53394/akd.981912

Öz

Floresan mikroskobunun gelişimi, lazer taramalı konfokal mikroskobunun icadı ile devrim yapmıştır. Üç boyutlu gösterim ve analiz teknikleriyle bu teknoloji özellikle tıp/biyomedikal dünyasına daha gerçek bir bakış sağlamıştır. Konfokal mikroskobu, üç boyutlu yapıya sahip floresan işaretli numunelerin görüntülenmesi için bir ışık mikroskobi tekniğidir. Konfokal mikroskop uygulamaları; fikse edilmiş veya canlı hücrelerde makromoleküllerin uzamsal dağılımının görüntülenmesini, üç boyutlu verilerin toplanmasını, çoklu floresan ile işaretlenmiş örneklerin görüntülenmesini ve canlı hücrelerdeki fizyolojik olayların ölçülmesini içerir. Bu derlemede, lazer taramalı konfokal görüntülemenin prensipleri, tarihçesi, diğer mikroskoplardan ayrılan özellikleri, ayrıca yenilikçi ve önemli yönleri ve tıpta kullanım alanları sunulmaktadır.

Kaynakça

  • 1. Pawley J (ed): Handbook of biological confocal microscopy. Springer Science & Business Media, 2006.
  • 2. Paddock SW (ed): Confocal microscopy methods and protocols. Humana Press, 1998.
  • 3. Murphy DB (ed): Fundamentals of light microscopy and electronic imaging. New York, John Wiley & Sons, 2002.
  • 4. Kasten FH, The origins of modern fluorescence microscopy and fluorescent probes, in Cell structure and function by microspectrofluorometry. Elsevier 1989; 3-50.
  • 5. Lazarides E, Weber K. Actin antibody: the specific visualization of actin filaments in non-muscle cells. Proceedings of the Nationa 1974; 71(6): 2268-72.
  • 6. Tsien R, Rink T, Poenie M. Measurement of cytosolic free Ca2+ in individual small cells using fluorescence microscopy with dual excitation wavelengths. Cell calcium 1985; 6(1-2): 145-57.
  • 7. Amos WB, White JG. How the confocal laser scanning microscope entered biological research. Biology of the Cell 2003; 95(6): 335-42.
  • 8. Dailey ME, Manders E, Soll DR, Terasaki M. Confocal microscopy of living cells. In: Pawley JB, ed. Handbook Of Biological Confocal Microscopy Confocal Microscopy of Living Cells. 3th ed. Springer, 2006: 381-403.
  • 9. Paddock SW, Principles and practices of laser scanning confocal microscopy. Molecular Biotechnology 2000; 16(2): 127-49.
  • 10. Semwogerere D, Weeks ER. Confocal microscopy. In: Gary E. Wnek, Gary L. Bowlin, eds. Encyclopedia of Biomaterials and Biomedical Engineering. 5th ed. W. Freeman, C.N. York, 2005: 23: 1-10.
  • 11. Petran M, Hadravsky M, Benes J, Boyde A. In Vivo Microscopy Using the Tandem Scanning Microscope a. Annals of the New York 1986; 483(1): 440-7.
  • 12. O'Rourke NA, Fraser SE. Dynamic changes in optic fiber terminal arbors lead to retinotopic map formation: an in vivo confocal microscopic study. Neuron 1990; 5(2): 159-71.
  • 13. Minsky M, Memoir on inventing the confocal scanning microscope. Scanning 1988; 10(4): 128-38.
  • 14. Jonkman J, Brown CM, Wright GD, Anderson KI, North AJ. Tutorial: guidance for quantitative confocal microscopy. Nature protocols 2020: 1-27.
  • 15. Földes-Papp Z, Demel U, Tilz GP. Laser scanning confocal fluorescence microscopy: an overview. International immunopharmacology 2003; 3(13-14): 1715-29.
  • 16. Kang J, Schwendeman SP. Determination of diffusion coefficient of a small hydrophobic probe in poly (lactide-co-glycolide) microparticles by laser scanning confocal microscopy. Macromolecules 2003; 36(4):1324-30.
  • 17. Berg A, Olthuis W, Bergveld P (eds): Micro total analysis systems 2000. Springer Science & Business Media, 2000.
  • 18. Thiele L, Rothen-Rutishauser B, Jilek S, H. Wunderli-Allenspach, H.P. Merkle, and E.J.J.o.C.R. Walter, Evaluation of particle uptake in human blood monocyte-derived cells in vitro. Does phagocytosis activity of dendritic cells measure up with macrophages? Journal of Controlled Release 2001; 76(1-2): 59-71.
  • 19. Osano E, Kishi J, Takahashi Y. Phagocytosis of titanium particles and necrosis in TNF-α-resistant mouse sarcoma L929 cells. Toxicology in vitro 2003; 17(1): 41-7.
  • 20. Witz CA, Cho S, Centonze VE, Montoya-Rodriguez IA, Schenken RS. Time series analysis of transmesothelial invasion by endometrial stromal and epithelial cells using three-dimensional confocal microscopy. Fertility and sterility 2003; 79: 770-8.
  • 21. Dmochowski IJ, Dmochowski JE, Oliveri P, Davidson EH, Fraser SE. Quantitative imaging of cis-regulatory reporters in living embryos. PNAS 2002; 99(20):12895-900.
  • 22. Panja S, Adams DJ. Gel to gel transitions by dynamic self-assembly. Chemical Communications 2019; 55(68): 10154-57.
  • 23. Draper ER, Adams DJ. How should multicomponent supramolecular gels be characterised? Chemical Society Reviews 2018; 47(10): 3395-405.
  • 24. Shigemitsu H, Hamachi I. Design strategies of stimuli-responsive supramolecular hydrogels relying on structural analyses and cell-mimicking approaches. Accounts of Chemical Research 2017; 50(4): 740-50.
  • 25. Pujals S, Feiner N, Delcanale P, Voets I, Albertazzi L. Super-resolution microscopy as a powerful tool to study complex synthetic materials. Nature Reviews 2019; 3(2): 68-84.
  • 26. Kubota R, Nakamura K, Torigoe S, Hamachi I. The Power of Confocal Laser Scanning Microscopy in Supramolecular Chemistry: In situ Real‐time Imaging of Stimuli‐Responsive Multicomponent Supramolecular Hydrogels. Chemistry Open 2020; 9(1): 67-79.
  • 27. Hibler BP, Connolly KL, Cordova M, Nehal KS, Rossi AM, Barker CA, Radiation therapy for synchronous basal cell carcinoma and lentigo maligna of the nose: response assessment by clinical examination and reflectance confocal microscopy. Practical radiation oncology 2015; 5(5): e543-e7.
  • 28. Ulrich, M. and S.J.J.o.b.o. Lange-Asschenfeldt, In vivo confocal microscopy in dermatology: from research to clinical application. Journal of biomedical optics 2013; 18(6): 061212.
  • 29. Rajadhyaksha M, González S, Zavislan JM, Anderson RR, Webb RH. In vivo confocal scanning laser microscopy of human skin II: advances in instrumentation and comparison with histology. Journal of Investigative Dermatology 1999; 113(3): 293-303.
  • 30. Rajadhyaksha M, Marghoob A, Rossi A, Halpern AC,Nehal KS. Reflectance confocal microscopy of skin in vivo: From bench to bedside. Lasers in Surgery and Medicine 2017; 49(1): 7-19.
  • 31. Streba CT, Giltan AM, Gheonea IA, Demetrian A,. Şoimu A-V, Săftoiu A, Gruionu G,. Gruionu LG. Utility of confocal laser endomicroscopy in pulmonology and lung cancer. Rom J Morphol Embryol 2016; 57(4): 1221-7.
  • 32. Pamudurthy V, Lodhia N, Konda VJ. Advances in endoscopy for colorectal polyp detection and classification. Baylor University Medical Center Proceedings 2020. 33(1): 28-35.
  • 33. Shahid MW, Buchner AM,. Heckman MG, Krishna M, Raimondo M, Woodward T, and Wallace MB. Diagnostic accuracy of probe-based confocal laser endomicroscopy and narrow band imaging for small colorectal polyps: a feasibility study. American Journal of Gastroenterology 2012; 107(2): 231-9.
  • 34. Goetz MJE. Confocal laser endomicroscopy: Current indications and future perspectives in gastrointestinal diseases. Endoscopia 2012; 24: 67-74.
  • 35. Fasanella V, Agnifili L, Mastropasqua R, Brescia L, Staso FD, Ciancaglini M, Mastropasqua L. In vivo laser scanning confocal microscopy of human meibomian glands in aging and ocular surface diseases. BioMed research International 2016; 2016.

Principles of Laser Scanning Confocal Microscope and Applications in Medicine

Yıl 2021, Cilt: 7 Sayı: 3, 457 - 462, 01.09.2021
https://doi.org/10.53394/akd.981912

Öz

The development of the fluorescent microscope is revolutionized with the invention of laser scanning confocal microscopy. With its three-dimensional display and analysis techniques, this technology has provided a more real view of the medical / biomedical world. Confocal microscope is based on a light microscopic technique for imaging fluorescently labeled samples with a three-dimensional structure. Confocal microscope applications include imaging the spatial distribution of macromolecules in fixed or live cells, collecting three-dimensional data, displaying multiple fluorescently labeled samples, and measuring physiological events in living cells. In this review; the principles of the laser scanning confocal imaging, history of confocal microskopy, features distinguished from other microscopes, as well as its innovative and important aspects and applications to medicine are presented.

Kaynakça

  • 1. Pawley J (ed): Handbook of biological confocal microscopy. Springer Science & Business Media, 2006.
  • 2. Paddock SW (ed): Confocal microscopy methods and protocols. Humana Press, 1998.
  • 3. Murphy DB (ed): Fundamentals of light microscopy and electronic imaging. New York, John Wiley & Sons, 2002.
  • 4. Kasten FH, The origins of modern fluorescence microscopy and fluorescent probes, in Cell structure and function by microspectrofluorometry. Elsevier 1989; 3-50.
  • 5. Lazarides E, Weber K. Actin antibody: the specific visualization of actin filaments in non-muscle cells. Proceedings of the Nationa 1974; 71(6): 2268-72.
  • 6. Tsien R, Rink T, Poenie M. Measurement of cytosolic free Ca2+ in individual small cells using fluorescence microscopy with dual excitation wavelengths. Cell calcium 1985; 6(1-2): 145-57.
  • 7. Amos WB, White JG. How the confocal laser scanning microscope entered biological research. Biology of the Cell 2003; 95(6): 335-42.
  • 8. Dailey ME, Manders E, Soll DR, Terasaki M. Confocal microscopy of living cells. In: Pawley JB, ed. Handbook Of Biological Confocal Microscopy Confocal Microscopy of Living Cells. 3th ed. Springer, 2006: 381-403.
  • 9. Paddock SW, Principles and practices of laser scanning confocal microscopy. Molecular Biotechnology 2000; 16(2): 127-49.
  • 10. Semwogerere D, Weeks ER. Confocal microscopy. In: Gary E. Wnek, Gary L. Bowlin, eds. Encyclopedia of Biomaterials and Biomedical Engineering. 5th ed. W. Freeman, C.N. York, 2005: 23: 1-10.
  • 11. Petran M, Hadravsky M, Benes J, Boyde A. In Vivo Microscopy Using the Tandem Scanning Microscope a. Annals of the New York 1986; 483(1): 440-7.
  • 12. O'Rourke NA, Fraser SE. Dynamic changes in optic fiber terminal arbors lead to retinotopic map formation: an in vivo confocal microscopic study. Neuron 1990; 5(2): 159-71.
  • 13. Minsky M, Memoir on inventing the confocal scanning microscope. Scanning 1988; 10(4): 128-38.
  • 14. Jonkman J, Brown CM, Wright GD, Anderson KI, North AJ. Tutorial: guidance for quantitative confocal microscopy. Nature protocols 2020: 1-27.
  • 15. Földes-Papp Z, Demel U, Tilz GP. Laser scanning confocal fluorescence microscopy: an overview. International immunopharmacology 2003; 3(13-14): 1715-29.
  • 16. Kang J, Schwendeman SP. Determination of diffusion coefficient of a small hydrophobic probe in poly (lactide-co-glycolide) microparticles by laser scanning confocal microscopy. Macromolecules 2003; 36(4):1324-30.
  • 17. Berg A, Olthuis W, Bergveld P (eds): Micro total analysis systems 2000. Springer Science & Business Media, 2000.
  • 18. Thiele L, Rothen-Rutishauser B, Jilek S, H. Wunderli-Allenspach, H.P. Merkle, and E.J.J.o.C.R. Walter, Evaluation of particle uptake in human blood monocyte-derived cells in vitro. Does phagocytosis activity of dendritic cells measure up with macrophages? Journal of Controlled Release 2001; 76(1-2): 59-71.
  • 19. Osano E, Kishi J, Takahashi Y. Phagocytosis of titanium particles and necrosis in TNF-α-resistant mouse sarcoma L929 cells. Toxicology in vitro 2003; 17(1): 41-7.
  • 20. Witz CA, Cho S, Centonze VE, Montoya-Rodriguez IA, Schenken RS. Time series analysis of transmesothelial invasion by endometrial stromal and epithelial cells using three-dimensional confocal microscopy. Fertility and sterility 2003; 79: 770-8.
  • 21. Dmochowski IJ, Dmochowski JE, Oliveri P, Davidson EH, Fraser SE. Quantitative imaging of cis-regulatory reporters in living embryos. PNAS 2002; 99(20):12895-900.
  • 22. Panja S, Adams DJ. Gel to gel transitions by dynamic self-assembly. Chemical Communications 2019; 55(68): 10154-57.
  • 23. Draper ER, Adams DJ. How should multicomponent supramolecular gels be characterised? Chemical Society Reviews 2018; 47(10): 3395-405.
  • 24. Shigemitsu H, Hamachi I. Design strategies of stimuli-responsive supramolecular hydrogels relying on structural analyses and cell-mimicking approaches. Accounts of Chemical Research 2017; 50(4): 740-50.
  • 25. Pujals S, Feiner N, Delcanale P, Voets I, Albertazzi L. Super-resolution microscopy as a powerful tool to study complex synthetic materials. Nature Reviews 2019; 3(2): 68-84.
  • 26. Kubota R, Nakamura K, Torigoe S, Hamachi I. The Power of Confocal Laser Scanning Microscopy in Supramolecular Chemistry: In situ Real‐time Imaging of Stimuli‐Responsive Multicomponent Supramolecular Hydrogels. Chemistry Open 2020; 9(1): 67-79.
  • 27. Hibler BP, Connolly KL, Cordova M, Nehal KS, Rossi AM, Barker CA, Radiation therapy for synchronous basal cell carcinoma and lentigo maligna of the nose: response assessment by clinical examination and reflectance confocal microscopy. Practical radiation oncology 2015; 5(5): e543-e7.
  • 28. Ulrich, M. and S.J.J.o.b.o. Lange-Asschenfeldt, In vivo confocal microscopy in dermatology: from research to clinical application. Journal of biomedical optics 2013; 18(6): 061212.
  • 29. Rajadhyaksha M, González S, Zavislan JM, Anderson RR, Webb RH. In vivo confocal scanning laser microscopy of human skin II: advances in instrumentation and comparison with histology. Journal of Investigative Dermatology 1999; 113(3): 293-303.
  • 30. Rajadhyaksha M, Marghoob A, Rossi A, Halpern AC,Nehal KS. Reflectance confocal microscopy of skin in vivo: From bench to bedside. Lasers in Surgery and Medicine 2017; 49(1): 7-19.
  • 31. Streba CT, Giltan AM, Gheonea IA, Demetrian A,. Şoimu A-V, Săftoiu A, Gruionu G,. Gruionu LG. Utility of confocal laser endomicroscopy in pulmonology and lung cancer. Rom J Morphol Embryol 2016; 57(4): 1221-7.
  • 32. Pamudurthy V, Lodhia N, Konda VJ. Advances in endoscopy for colorectal polyp detection and classification. Baylor University Medical Center Proceedings 2020. 33(1): 28-35.
  • 33. Shahid MW, Buchner AM,. Heckman MG, Krishna M, Raimondo M, Woodward T, and Wallace MB. Diagnostic accuracy of probe-based confocal laser endomicroscopy and narrow band imaging for small colorectal polyps: a feasibility study. American Journal of Gastroenterology 2012; 107(2): 231-9.
  • 34. Goetz MJE. Confocal laser endomicroscopy: Current indications and future perspectives in gastrointestinal diseases. Endoscopia 2012; 24: 67-74.
  • 35. Fasanella V, Agnifili L, Mastropasqua R, Brescia L, Staso FD, Ciancaglini M, Mastropasqua L. In vivo laser scanning confocal microscopy of human meibomian glands in aging and ocular surface diseases. BioMed research International 2016; 2016.
Toplam 35 adet kaynakça vardır.

Ayrıntılar

Birincil Dil Türkçe
Konular Klinik Tıp Bilimleri
Bölüm Derlemeler
Yazarlar

Zeynep Betül Sarı Bu kişi benim 0000-0003-0378-7673

Yayımlanma Tarihi 1 Eylül 2021
Gönderilme Tarihi 18 Ağustos 2020
Yayımlandığı Sayı Yıl 2021 Cilt: 7 Sayı: 3

Kaynak Göster

APA Sarı, Z. B. (2021). Lazer Taramalı Konfokal Mikroskobun Prensipleri ve Tıpta Kullanım Alanları. Akdeniz Tıp Dergisi, 7(3), 457-462. https://doi.org/10.53394/akd.981912