Electrocatalytic
reactions of glucose oxidation based on enzyme-labeled electrochemical
biosensors demand a high enzymatic activity and fast electron transfer
property to produce the amplified signal response. Through a “green”
synthesis method, Pt@BSA nanocomposite was prepared as a biosensing
interface for the first time. Herein we presented a convenient and
effective glucose sensing matrix based on Pt@BSA nanocomposite along
with the covalent adsorption of glucose oxidase (GOD). The electrocatalytic
activity toward oxygen reduction was significantly enhanced due to
the excellent bioactivity of anchored GOD and superior catalytic performance
of interior platinum nanoparticles, which was gradually restrained
with the addition of glucose. A sensitive glucose biosensor was then
successfully developed upon the restrained oxygen reduction peak current.
Differential pulse voltammetry (DPV) was employed to investigate the
determination performance of the enzyme biosensor, resulting in a
linear response range from 0.05 to 12.05 mM with an optimal detection
limit of 0.015 mM. The as-proposed sensing technique revealed high
selectivity against endogenous interfering species, satisfactory storage
stability, acceptable durability, and favorable fabrication reproducibility
with the RSD of 3.8%. During the practical application in human blood
serum samples, this glucose biosensor obtained a good detection accuracy
of analytical recoveries within 97.5 to 104.0%, providing an alternative
scheme for glucose level assay in clinical application