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Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science
Tape stripping - Three potential alternatives for cosmetic science

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Notas del editor

  1. Thank you to IFSCC for giving me the possibility to present my work and thank you CHAIRMAN introducing me. -> Detail what we do
  2. Skin science: Penetration (actif), Skin structure, properties Skin from killed pigs
  3. Skin science: Penetration (actif), Skin structure, properties Skin from killed pigs
  4. Skin science: Penetration (actif), Skin structure, properties Skin from killed pigs
  5. Skin science: Penetration (actif), Skin structure, properties Skin from killed pigs
  6. Skin science: Penetration (actif), Skin structure, properties Skin from killed pigs
  7. Skin science: Penetration (actif), Skin structure, properties Skin from killed pigs
  8. Skin science: Penetration (actif), Skin structure, properties Skin from killed pigs
  9. TS one very common method - showing two alternative methods (trypsin, cyano) and discuss their pros and cons-
  10. TS one very common method - showing two alternative methods (trypsin, cyano) and discuss their pros and cons-
  11. TS one very common method - showing two alternative methods (trypsin, cyano) and discuss their pros and cons-
  12. TS one very common method - showing two alternative methods (trypsin, cyano) and discuss their pros and cons-
  13. TS one very common method - showing two alternative methods (trypsin, cyano) and discuss their pros and cons-
  14. TS one very common method - showing two alternative methods (trypsin, cyano) and discuss their pros and cons-
  15. TS one very common method - showing two alternative methods (trypsin, cyano) and discuss their pros and cons-
  16. TS one very common method - showing two alternative methods (trypsin, cyano) and discuss their pros and cons-
  17. TS one very common method - showing two alternative methods (trypsin, cyano) and discuss their pros and cons-
  18. TS one very common method - showing two alternative methods (trypsin, cyano) and discuss their pros and cons-
  19. TS one very common method - showing two alternative methods (trypsin, cyano) and discuss their pros and cons-
  20. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron Analytical methods: Histological imaging and by CRM - Why CRM? Will be detailed but I can betray that it serves also as an alternative. -> CRM
  21. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron Analytical methods: Histological imaging and by CRM - Why CRM? Will be detailed but I can betray that it serves also as an alternative. -> CRM
  22. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron Analytical methods: Histological imaging and by CRM - Why CRM? Will be detailed but I can betray that it serves also as an alternative. -> CRM
  23. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron Analytical methods: Histological imaging and by CRM - Why CRM? Will be detailed but I can betray that it serves also as an alternative. -> CRM
  24. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron Analytical methods: Histological imaging and by CRM - Why CRM? Will be detailed but I can betray that it serves also as an alternative. -> CRM
  25. Why also CRM? How does it work also an alternative and other advantages
  26. Advantages of CRM -> Technique 1. SC thickness
  27. Advantages of CRM -> Technique 1. SC thickness
  28. Advantages of CRM -> Technique 1. SC thickness
  29. Advantages of CRM -> Technique 1. SC thickness
  30. Advantages of CRM -> Technique 1. SC thickness
  31. Advantages of CRM -> Technique 1. SC thickness
  32. Advantages of CRM -> Technique 1. SC thickness
  33. Advantages of CRM -> Technique 1. SC thickness
  34. Advantages of CRM -> Technique 1. SC thickness
  35. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  36. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  37. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  38. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  39. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  40. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  41. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  42. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  43. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  44. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  45. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  46. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  47. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  48. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  49. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  50. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  51. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  52. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  53. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  54. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  55. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  56. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  57. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  58. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  59. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  60. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  61. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  62. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  63. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  64. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  65. Baseline Linear von Punkt 2500 bis 3900 2931 ν(CH3) asymmetric stretching vibration 3450 ν(OH) stretching vibration 3329 ν(NH) Vibration of protein 2910-2950 Integral Protein and 3350-3550 Water ν = stretch 2852 ν(CH2) symmetric 2883 ν(CH2) asymmetric Measured at 0µm and ~6µm -> H2O vs Depth
  66. Different methods of SC limit Interpretation steep slope -> Practical; Tape Stripping
  67. Different methods of SC limit Interpretation steep slope -> Practical; Tape Stripping
  68. Different methods of SC limit Interpretation steep slope -> Practical; Tape Stripping
  69. Different methods of SC limit Interpretation steep slope -> Practical; Tape Stripping
  70. Different methods of SC limit Interpretation steep slope -> Practical; Tape Stripping
  71. D-Squame® adhesive tapes (diameter 22 mm, surface 3.8 cm2, Monaderm, Monaco) for 10 seconds using a 500 g mass stick -> Histological Image
  72. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron 9 strips: 50% 28 strips 20% remains -> CRM
  73. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron 9 strips: 50% 28 strips 20% remains -> CRM
  74. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron 9 strips: 50% 28 strips 20% remains -> CRM
  75. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron 9 strips: 50% 28 strips 20% remains -> CRM
  76. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron 9 strips: 50% 28 strips 20% remains -> CRM
  77. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron 9 strips: 50% 28 strips 20% remains -> CRM
  78. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron 9 strips: 50% 28 strips 20% remains -> CRM
  79. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron 9 strips: 50% 28 strips 20% remains -> CRM
  80. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron 9 strips: 50% 28 strips 20% remains -> CRM
  81. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron 9 strips: 50% 28 strips 20% remains -> CRM
  82. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron 9 strips: 50% 28 strips 20% remains -> CRM
  83. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron 9 strips: 50% 28 strips 20% remains -> CRM
  84. Hematoxylin–Phloxin–Saffron: Blue: Cell nuclei by hematoxylin; Pink: cytoplasm by phloxine; Orange/Yellow: extracellular matrix of connective tissue by saffron 9 strips: 50% 28 strips 20% remains -> CRM
  85. before : 10µm after: irregulaire
  86. before : 10µm after: irregulaire
  87. 0.0016 wt-% trypsin (Sigma-Aldrich) in PBS pH 7.2 for 2-3 hours @ 40°C Stop reaction with a trypsin inhibitor is possible. SC separated surgical blade no. 11 after rinsing off skin surface with phosphate buffered saline (PBS) buffer -> Histological Image
  88. Before: 7.33 ± 0.67 After: insignificative
  89. Before: 7.33 ± 0.67 After: insignificative
  90. microscope slide (76 x 26 mm; Roth, Karlsruhe, Germany) coated w cyanoacrylate resin (Loctite Super Glue-3 from Henkel France) applied on SC for defined polymerization times: 3 x 2min and 2 x 15 min Removing slide detached SC [64]. -> Histological Image
  91. 3 times 2 minutes
  92. 3 times 2 minutes
  93. 3 times 2 minutes Before: 7.5±0.5 µm After: 5±0.58µm -> 2 times 15 min Histological Image
  94. 3 times 2 minutes Before: 7.5±0.5 µm After: 5±0.58µm -> 2 times 15 min Histological Image
  95. 2 times 15 minutes
  96. 2 times 15 minutes
  97. 3 times 2 minutes Before: 10 ± 0.82 µm After: 1±1µm -> Resume via direct comparison of Histological Image
  98. 3 times 2 minutes Before: 10 ± 0.82 µm After: 1±1µm -> Resume via direct comparison of Histological Image
  99. -> Resume via table
  100. -> Resume via table
  101. -> Let me conclude the results of this study
  102. -> Let me conclude the results of this study
  103. -> Let me conclude the results of this study
  104. Conclusion: Cyano and Trypsin are best, but CRM seems to has potential -> Detail with data:
  105. Conclusion: Cyano and Trypsin are best, but CRM seems to has potential -> Detail with data:
  106. Conclusion: Cyano and Trypsin are best, but CRM seems to has potential -> Detail with data:
  107. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  108. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  109. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  110. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  111. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  112. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  113. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  114. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  115. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  116. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  117. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  118. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  119. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  120. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  121. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  122. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  123. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  124. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  125. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  126. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  127. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  128. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  129. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  130. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  131. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  132. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  133. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  134. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  135. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  136. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  137. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  138. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  139. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
  140. For opening discussion! TS In vivo: minimal invasive CRM Standardized: characteristical peak for actives etc. furrows better with cyano than ts and also glands ->Let me repeat the conclusion
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  170. CRM is a innovative, new method and has to be developed a lot more during the next years -> Discussion
  171. CRM is a innovative, new method and has to be developed a lot more during the next years -> Discussion
  172. It will be a pleasure answering any question concerning these methods and invite you for an expierience exchange