5 CONCLUSION
The immunohistochemical staining method with the
most optimal anti-PGP 9.5 antibodies was performed
on thin, with low-temperature antigen retrieval and 1:
2000 antibody dilution incubated overnight at 21°C.
The results of this study can be directed to become
a diagnostic method of neuropathy.
ACKNOWLEDGEMENTS
The author would like to express gratitude to BPPDN
Dikti 2015 (906.II/E4.4/2015). Mrs. Wiwiet
Setyowati, Histology, and Cell Biology Laboratory of
UGM Medical School.
REFERENCES
Beiswenger, K.K., Calcutt, N.A. and Mizisin, A.P., 2008.
Epidermal nerve fiber quantification in the assessment
of diabetic neuropathy. Acta histochemica, 110(5),
pp.351-362.
Chen, X., Graham, J., Dabbah, M.A., Petropoulos, I.N.,
Ponirakis, G., Asghar, O., Alam, U., Marshall, A.,
Fadavi, H., Ferdousi, M. and Azmi, S., 2015. Small
nerve fiber quantification in the diagnosis of diabetic
sensorimotor polyneuropathy: comparing corneal
confocal microscopy with intraepidermal nerve fiber
density. Diabetes care, 38(6), pp.1138-1144.
Karlsson, P., Haroutounian, S., Polydefkis, M., Nyengaard,
J.R. and Jensen, T.S., 2016. Structural and functional
characterization of nerve fibres in polyneuropathy and
healthy subjects. Scandinavian Journal of Pain, 10,
pp.28-35.
Karlsson, P., Porretta‐Serapiglia, C., Lombardi, R., Jensen,
T.S. and Lauria, G., 2013. Dermal innervation in
healthy subjects and small fiber neuropathy patients: a
stereological reappraisal. Journal of the Peripheral
Nervous System, 18(1), pp.48-53.
Malik, R.A., Veves, A., Tesfaye, S.A., Smith, G., Cameron,
N., Zochodne, D., Lauria, G. and Toronto Consensus
Panel on Diabetic Neuropathy, 2011. Small fibre
neuropathy: role in the diagnosis of diabetic
sensorimotor polyneuropathy. Diabetes/metabolism
research and reviews, 27(7), pp.678-684.
Periquet, M.I., Novak, V., Collins, M.P., Nagaraja, H.N.,
Erdem, S., Nash, S.M., Freimer, M.L., Sahenk, Z.,
Kissel, J.T. and Mendell, J.R., 1999. Painful sensory
neuropathy: prospective evaluation using skin biopsy.
Neurology, 53(8), pp.1641-1641.
Stavniichuk, R., Drel, V.R., Shevalye, H., Maksimchyk, Y.,
Kuchmerovska, T.M., Nadler, J.L. and Obrosova, I.G.,
2011. Baicalein alleviates diabetic peripheral
neuropathy through inhibition of oxidative–nitrosative
stress and p38 MAPK activation. Experimental
neurology, 230(1), pp.106-113.
Stone, J.R., Walker, S.A. and Povlishock, J.T., 1999. The
visualization of a new class of traumatically injured
axons through the use of a modified method of
microwave antigen retrieval. Acta neuropathologica,
97(4), pp.335-345.
Sun, Y., Zhu, L., Huang, X., Zhou, C. and Zhang, X., 2014.
Immunohistochemical localization of nerve fibers in
the pseudocapsule of fibroids. European journal of
histochemistry: 8;58(2):2249.
Thomsen, N.O.B., Englund, E., Thrainsdottir, S., Rosén, I.
and Dahlin, L.B., 2009. Intraepidermal nerve fibre
density at wrist level in diabetic and non‐diabetic
patients. Diabetic medicine, 26(11), pp.1120-1126.
Ventura-Sobrevilla, J., Boone-Villa, V.D., Aguilar, C.N.,
Román-Ramos, R., Vega-Avila, E., Campos-
Sepúlveda, E. and Alarcón-Aguilar, F., 2011. Effect of
varying dose and administration of streptozotocin on
blood sugar in male CD1 mice. In Proc West
Pharmacol Soc (Vol. 54, pp. 5-9).
Witgen, B.M., Grady, M.S., Nyengaard, J.R. and
Gundersen, H.J.G., 2006. A new fractionator principle
with varying sampling fractions: exemplified by
estimation of synapse number using electron
microscopy. Journal of microscopy, 222(3), pp.251-
255.