Nanofibers and Nanosurfaces
127
52. Apetrei IM, Diaconu C, Apetrei C, Georgescu C (2016) Electrochemical biosensor based on
carbon nanofibers and diamine oxidase for detection of norepinephrine. Rom Biotechnol Lett
21(1):11092
53. Rosalki SB, Roberts R, Katus HA et al (2004) Cardiac biomarkers for detection of myocardial
infarction: perspectives from past to present. Clin Chem 50:2205–2213. https://doi.org/10.
1373/clinchem.2004.041749
54. Rezaei B, Shoushtari AM, Rabiee M et al (2018) An electrochemical immunosensor for
cardiac Troponin I using electrospun carboxylated multi-walled carbon nanotube-whiskered
nanofibres. Talanta 182:178–186. https://doi.org/10.1016/J.TALANTA.2018.01.046
55. Periyakaruppan A, Gandhiraman RP, Meyyappan M, Koehne JE (2013) Label-free detection
of cardiac troponin-I using carbon nanofiber based nanoelectrode arrays. Anal Chem 85:3858–
3863. https://doi.org/10.1021/ac302801z
56. Kumar R, Meyyappan M, Koehne JE (2018) Multiplexed electrochemical immunosensor
for label-free detection of cardiac markers using carbon nanofiber array device. Meet Abstr
MA2018-01:2502–2502
57. Gupta RK, Pandya R, Sieffert T et al (2016) Multiplexed electrochemical immunosensor for
label-free detection of cardiac markers using a carbon nanofiber array chip. J Electroanal
Chem 773:53–62. https://doi.org/10.1016/J.JELECHEM.2016.04.034
58. Gonzalez M, Rivera D, Marcelino A et al (2014) The effect of silver nanofibers on the
deformation properties of blood vessels: towards the development of new nanotechnologies
to prevent rupture of aneurysms. J Nanomater 2014:1–8. https://doi.org/10.1155/2014/853120
59. Kim M-W, An S, Kim K et al (2018) Packing of metalized polymer nanofibers for aneurysm
embolization. Nanoscale 10:6589–6601. https://doi.org/10.1039/C7NR09645C
60. Wang J-B, Zhou B, Gu X-L et al (2013) Treatment of a canine carotid artery aneurysm
model with a biodegradable nanofiber-covered stent: a prospective pilot study. Neurol India
61:282–287. https://doi.org/10.4103/0028-3886.115069
61. Liu K-S, Lee C-H, Lee D et al (2018) Sustained local delivery of high-concentration
vancomycin from a hybrid biodegradable, antibiotic-eluting, nanofiber-loaded endovascular
prosthesis for treatment of mycotic aortic aneurysms. J Vasc Surg 68:597–606. https://doi.
org/10.1016/J.JVS.2017.07.142
62. Tang Y, Chen L, Zhao K et al (2016) Fabrication of PLGA/HA (core)-collagen/amoxicillin
(shell) nanofiber membranes through coaxial electrospinning for guided tissue regeneration.
Compos Sci Technol 125:100–107. https://doi.org/10.1016/J.COMPSCITECH.2016.02.005
63. Wang Y, Jiang Y, Zhang Y et al (2019) Dual functional electrospun core-shell nanofibers for
anti-infective guided bone regeneration membranes. Mater Sci Eng, C 98:134–139. https://
doi.org/10.1016/J.MSEC.2018.12.115
64. Fu L, Wang Z, Dong S et al (2017) Bilayer poly(lactic-co-glycolic acid)/nano-hydroxyapatite
membrane with barrier function and osteogenesis promotion for guided bone regeneration.
Materials (Basel) 10:257. https://doi.org/10.3390/ma10030257
65. Trobos M, Juhlin A, Shah FA et al (2018) In vitro evaluation of barrier function against oral
bacteria of dense and expanded polytetrafluoroethylene (PTFE) membranes for guided bone
regeneration. Clin Implant Dent Relat Res 20:738–748. https://doi.org/10.1111/cid.12629
66. Dwek JR (2010) The periosteum: what is it, where is it, and what mimics it in its absence?
Skeletal Radiol 39:319–323. https://doi.org/10.1007/s00256-009-0849-9
67. Wang T, Zhai Y, Nuzzo M et al (2018) Layer-by-layer nanofiber-enabled engineering of
biomimetic periosteum for bone repair and reconstruction. Biomaterials 182:279–288. https://
doi.org/10.1016/J.BIOMATERIALS.2018.08.028
68. Cheng G, Ma X, Li J et al (2018) Incorporating platelet-rich plasma into coaxial electrospun
nanofibers for bone tissue engineering. Int J Pharm 547:656–666. https://doi.org/10.1016/j.
ijpharm.2018.06.020
69. Li L, Zhou G, Wang Y et al (2015) Controlled dual delivery of BMP-2 and dexamethasone
by nanoparticle-embedded electrospun nanofibers for the efficient repair of critical-sized rat
calvarial defect. Biomaterials 37:218–229. https://doi.org/10.1016/J.BIOMATERIALS.2014.
10.015
127
52. Apetrei IM, Diaconu C, Apetrei C, Georgescu C (2016) Electrochemical biosensor based on
carbon nanofibers and diamine oxidase for detection of norepinephrine. Rom Biotechnol Lett
21(1):11092
53. Rosalki SB, Roberts R, Katus HA et al (2004) Cardiac biomarkers for detection of myocardial
infarction: perspectives from past to present. Clin Chem 50:2205–2213. https://doi.org/10.
1373/clinchem.2004.041749
54. Rezaei B, Shoushtari AM, Rabiee M et al (2018) An electrochemical immunosensor for
cardiac Troponin I using electrospun carboxylated multi-walled carbon nanotube-whiskered
nanofibres. Talanta 182:178–186. https://doi.org/10.1016/J.TALANTA.2018.01.046
55. Periyakaruppan A, Gandhiraman RP, Meyyappan M, Koehne JE (2013) Label-free detection
of cardiac troponin-I using carbon nanofiber based nanoelectrode arrays. Anal Chem 85:3858–
3863. https://doi.org/10.1021/ac302801z
56. Kumar R, Meyyappan M, Koehne JE (2018) Multiplexed electrochemical immunosensor
for label-free detection of cardiac markers using carbon nanofiber array device. Meet Abstr
MA2018-01:2502–2502
57. Gupta RK, Pandya R, Sieffert T et al (2016) Multiplexed electrochemical immunosensor for
label-free detection of cardiac markers using a carbon nanofiber array chip. J Electroanal
Chem 773:53–62. https://doi.org/10.1016/J.JELECHEM.2016.04.034
58. Gonzalez M, Rivera D, Marcelino A et al (2014) The effect of silver nanofibers on the
deformation properties of blood vessels: towards the development of new nanotechnologies
to prevent rupture of aneurysms. J Nanomater 2014:1–8. https://doi.org/10.1155/2014/853120
59. Kim M-W, An S, Kim K et al (2018) Packing of metalized polymer nanofibers for aneurysm
embolization. Nanoscale 10:6589–6601. https://doi.org/10.1039/C7NR09645C
60. Wang J-B, Zhou B, Gu X-L et al (2013) Treatment of a canine carotid artery aneurysm
model with a biodegradable nanofiber-covered stent: a prospective pilot study. Neurol India
61:282–287. https://doi.org/10.4103/0028-3886.115069
61. Liu K-S, Lee C-H, Lee D et al (2018) Sustained local delivery of high-concentration
vancomycin from a hybrid biodegradable, antibiotic-eluting, nanofiber-loaded endovascular
prosthesis for treatment of mycotic aortic aneurysms. J Vasc Surg 68:597–606. https://doi.
org/10.1016/J.JVS.2017.07.142
62. Tang Y, Chen L, Zhao K et al (2016) Fabrication of PLGA/HA (core)-collagen/amoxicillin
(shell) nanofiber membranes through coaxial electrospinning for guided tissue regeneration.
Compos Sci Technol 125:100–107. https://doi.org/10.1016/J.COMPSCITECH.2016.02.005
63. Wang Y, Jiang Y, Zhang Y et al (2019) Dual functional electrospun core-shell nanofibers for
anti-infective guided bone regeneration membranes. Mater Sci Eng, C 98:134–139. https://
doi.org/10.1016/J.MSEC.2018.12.115
64. Fu L, Wang Z, Dong S et al (2017) Bilayer poly(lactic-co-glycolic acid)/nano-hydroxyapatite
membrane with barrier function and osteogenesis promotion for guided bone regeneration.
Materials (Basel) 10:257. https://doi.org/10.3390/ma10030257
65. Trobos M, Juhlin A, Shah FA et al (2018) In vitro evaluation of barrier function against oral
bacteria of dense and expanded polytetrafluoroethylene (PTFE) membranes for guided bone
regeneration. Clin Implant Dent Relat Res 20:738–748. https://doi.org/10.1111/cid.12629
66. Dwek JR (2010) The periosteum: what is it, where is it, and what mimics it in its absence?
Skeletal Radiol 39:319–323. https://doi.org/10.1007/s00256-009-0849-9
67. Wang T, Zhai Y, Nuzzo M et al (2018) Layer-by-layer nanofiber-enabled engineering of
biomimetic periosteum for bone repair and reconstruction. Biomaterials 182:279–288. https://
doi.org/10.1016/J.BIOMATERIALS.2018.08.028
68. Cheng G, Ma X, Li J et al (2018) Incorporating platelet-rich plasma into coaxial electrospun
nanofibers for bone tissue engineering. Int J Pharm 547:656–666. https://doi.org/10.1016/j.
ijpharm.2018.06.020
69. Li L, Zhou G, Wang Y et al (2015) Controlled dual delivery of BMP-2 and dexamethasone
by nanoparticle-embedded electrospun nanofibers for the efficient repair of critical-sized rat
calvarial defect. Biomaterials 37:218–229. https://doi.org/10.1016/J.BIOMATERIALS.2014.
10.015
