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1.
J Neural Eng ; 8(4): 046010, 2011 Aug.
Article in English | MEDLINE | ID: mdl-21654037

ABSTRACT

We recently introduced a series of stimuli-responsive, mechanically adaptive polymer nanocomposites. Here, we report the first application of these bio-inspired materials as substrates for intracortical microelectrodes. Our hypothesis is that the ideal electrode should be initially stiff to facilitate minimal trauma during insertion into the cortex, yet become mechanically compliant to match the stiffness of the brain tissue and minimize forces exerted on the tissue, attenuating inflammation. Microprobes created from mechanically reinforced nanocomposites demonstrated a significant advantage compared to model microprobes composed of neat polymer only. The nanocomposite microprobes exhibit a higher storage modulus (E' = ~5 GPa) than the neat polymer microprobes (E' = ~2 GPa) and can sustain higher loads (~12 mN), facilitating penetration through the pia mater and insertion into the cerebral cortex of a rat. In contrast, the neat polymer microprobes mechanically failed under lower loads (~7 mN) before they were capable of insertion into cortical tissue. Further, we demonstrated the material's ability to morph while in the rat cortex to more closely match the mechanical properties of the cortical tissue. Nanocomposite microprobes that were implanted into the rat cortex for up to eight weeks demonstrated increased cell density at the microelectrode-tissue interface and a lack of tissue necrosis or excessive gliosis. This body of work introduces our nanocomposite-based microprobes as adaptive substrates for intracortical microelectrodes and potentially for other biomedical applications.


Subject(s)
Cerebral Cortex/physiology , Electrodes, Implanted , Microelectrodes , Nanocomposites , Algorithms , Animals , Biocompatible Materials , Cerebral Cortex/pathology , Electrodes, Implanted/adverse effects , Equipment Failure , Gliosis , Humidity , Inflammation/etiology , Inflammation/prevention & control , Materials Testing , Mechanical Phenomena , Microelectrodes/adverse effects , Nanocomposites/adverse effects , Necrosis , Prosthesis Design , Rats , Rats, Sprague-Dawley , Temperature , Tensile Strength
2.
Am J Nurs ; 98(4): 25, 1998 Apr.
Article in English | MEDLINE | ID: mdl-9556679
7.
Buenos Aires; Centro Latinoamericano de Administración Médica; 1975. 36 p. (Traducciones, 46).
Monography in Spanish | BINACIS | ID: biblio-1212056

Subject(s)
Health Systems , USSR
8.
Buenos Aires; Centro Latinoamericano de Administración Médica; 1975. 36 p. (Traducciones, 46). (105965).
Monography in Spanish | BINACIS | ID: bin-105965

Subject(s)
Health Systems , USSR
11.
13.
N Y J Dent ; 37(5): 198-9, 1967 May.
Article in English | MEDLINE | ID: mdl-5336482
14.
15.
J Am Optom Assoc ; 37(11): 1032-3, 1966 Nov.
Article in English | MEDLINE | ID: mdl-5342000
16.
Am J Psychiatry ; 123(2): 174-6, 1966 Aug.
Article in English | MEDLINE | ID: mdl-5329928
17.
JAMA ; 196(11): 995-8, 1966 Jun 13.
Article in English | MEDLINE | ID: mdl-5327613
18.
Del Med J ; 38(3): 71-7, 1966 Mar.
Article in English | MEDLINE | ID: mdl-5907608
19.
West Med Med J West ; 7(2): 26-31, 1966 Feb.
Article in English | MEDLINE | ID: mdl-5951981
20.
Am J Public Health Nations Health ; 56(1): 10-8, 1966 Jan.
Article in English | MEDLINE | ID: mdl-5948098
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