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Featured researches published by Jian Zhou.


Journal of the American Chemical Society | 2008

Biochemically controlled bioelectrocatalytic interface.

Tsz Kin Tam; Jian Zhou; Marcos Pita; Maryna Ornatska; Sergiy Minko; Evgeny Katz

A switchable bioelectrocatalytic system for glucose oxidation controlled by external biochemical signals exemplifies interfacing between bioelectronic and biochemical ensembles.


Biosensors and Bioelectronics | 2009

Enzyme logic gates for the digital analysis of physiological level upon injury.

Kalayil Manian Manesh; Jan Halámek; Marcos Pita; Jian Zhou; Tsz Kin Tam; Padmanabhan Santhosh; Min-Chieh Chuang; Joshua Ray Windmiller; Dewi Abidin; Evgeny Katz; Joseph Wang

A biocomputing system composed of a combination of AND/IDENTITY logic gates based on the concerted operation of three enzymes: lactate oxidase, horseradish peroxidase and glucose dehydrogenase was designed to process biochemical information related to pathophysiological conditions originating from various injuries. Three biochemical markers: lactate, norepinephrine and glucose were applied as input signals to activate the enzyme logic system. Physiologically normal concentrations of the markers were selected as logic 0 values of the input signals, while their abnormally increased concentrations, indicative of various injury conditions were defined as logic 1 input. Biochemical processing of different patterns of the biomarkers resulted in the formation of norepiquinone and NADH defined as the output signals. Optical and electrochemical means were used to follow the formation of the output signals for eight different combinations of three input signals. The enzymatically processed biochemical information presented in the form of a logic truth table allowed distinguishing the difference between normal physiological conditions, pathophysiological conditions corresponding to traumatic brain injury and hemorrhagic shock, and abnormal situations (not corresponding to injury). The developed system represents a biocomputing logic system applied for the analysis of biomedical conditions related to various injuries. We anticipate that such biochemical logic gates will facilitate decision-making in connection to an integrated therapeutic feedback-loop system and hence will revolutionize the monitoring and treatment of injured civilians and soldiers.


Journal of Physical Chemistry B | 2009

Enzyme-Based NAND and NOR Logic Gates with Modular Design

Jian Zhou; Mary A. Arugula; Jan Halámek; Marcos Pita; Evgeny Katz

The logic gates NAND/NOR were mimicked by enzyme biocatalyzed reactions activated by sucrose, maltose and phosphate. The subunits performing AND/OR Boolean logic operations were designed using maltose phosphorylase and cooperative work of invertase/amyloglucosidase, respectively. Glucose produced as the output signal from the AND/OR subunits was applied as the input signal for the INVERTER gate composed of alcohol dehydrogenase, glucose oxidase, microperoxidase-11, ethanol and NAD(+), which generated the final output in the form of NADH inverting the logic signal from 0 to 1 or from 1 to 0. The final output signal was amplified by a self-promoting biocatalytic system. In order to fulfill the Boolean properties of associativity and commutativity in logic networks, the final NADH output signal was converted to the initial signals of maltose and phosphate, thus allowing assembling of the same standard units in concatenated sequences. The designed modular approach, signal amplification and conversion processes open the way toward complex logic networks composed of standard elements resembling electronic integrated circuitries.


Journal of Physical Chemistry B | 2010

Enzymatic AND Logic Gates Operated Under Conditions Characteristic of Biomedical Applications

Dmitriy V. Melnikov; Guinevere Strack; Jian Zhou; Joshua Ray Windmiller; Jan Halámek; Vera Bocharova; Min-Chieh Chuang; Padmanabhan Santhosh; Vladimir Privman; Joseph Wang; Evgeny Katz

Experimental and theoretical analyses of the lactate dehydrogenase and glutathione reductase based enzymatic AND logic gates in which the enzymes and their substrates serve as logic inputs are performed. These two systems are examples of the novel, previously unexplored class of biochemical logic gates that illustrate potential biomedical applications of biochemical logic. They are characterized by input concentrations at logic 0 and 1 states corresponding to normal and pathophysiological conditions. Our analysis shows that the logic gates under investigation have similar noise characteristics. Both significantly amplify random noise present in inputs; however, we establish that for realistic widths of the input noise distributions, it is still possible to differentiate between the logic 0 and 1 states of the output. This indicates that reliable detection of pathophysiological conditions is indeed possible with such enzyme logic systems.


Journal of Physical Chemistry B | 2010

Realization and Properties of Biochemical-Computing Biocatalytic XOR Gate Based on Signal Change

Vladimir Privman; Jian Zhou; Jan Halámek; Evgeny Katz

We consider a realization of the XOR logic gate in a system involving two competing biocatalytic reactions, for which the logic-1 output is defined by these two processes causing a change in the optically detected signal. A model is developed for describing such systems in an approach suitable for evaluation of the analog noise amplification properties of the gate and optimization of its functioning. The initial data are fitted for gate quality evaluation within the developed model, and then modifications are proposed and experimentally realized for improving the gate functioning.


Bioelectrochemistry | 2009

Switchable electrode controlled by Boolean logic gates using enzymes as input signals

Xuemei Wang; Jian Zhou; Tsz Kin Tam; Evgeny Katz; Marcos Pita

Application of Boolean logic operations performed by enzymes to control electrochemical systems is presented. Indium-tin oxide (ITO) electrodes with the surface modified with poly-4-vinyl pyridine (P4VP) brush were synthesized and used as switchable electrochemical systems. The switch ON and OFF of the electrode activity were achieved by pH changes generated in situ by biocatalytic reactions in the presence of enzymes used as input signals. Two logic gates operating as AND/OR Boolean functions were designed using invertase and glucose oxidase or esterase and glucose oxidase as input signals, respectively. The electrode surface coated with a shrunk P4VP polymer at neutral pH values was not electrochemically active because of the blocking effect of the polymer film. The positive outputs of the logic operations yielded a pH drop to acidic conditions, resulting in the protonation and swelling of the P4VP polymer allowing penetration of a soluble redox probe to the conducting support, thus switching the electrode activity ON. The electrode interface was reset to the initial OFF state, with the inhibited electrochemical reaction, upon in situ pH increase generated by another enzymatic reaction in the presence of urease. Logically processed biochemical inputs of various enzymes allowed reversible activation-inactivation of the electrochemical reaction.


Talanta | 2011

Alert-type biological dosimeter based on enzyme logic system

Vera Bocharova; Jan Halámek; Jian Zhou; Guinevere Strack; Joseph Wang; Evgeny Katz

A cooperative effect of two biomarkers, α-amylase and lactate dehydrogenase, was used to analyze radiation-caused tissue damage in vitro in model solutions of human serum. The analytical system was based on the recently emerged biocomputing concept applying biocatalytic cascades for logic processing of biochemical input signals. The studied system resembled a Boolean NAND logic gate in which the change of the optical output signal from a high level (logic value 1) to a low level (logic value 0) confirmed the presence of both biomarkers at pathological concentrations (1,1 input signals), thus yielding the conclusion about radiation tissue damage. The system operates in a digital YES/NO format as an alert-type biosensor with a built-in Boolean logic.


ChemBioChem | 2009

Biomolecular Oxidative Damage Activated by Enzymatic Logic Systems: Biologically Inspired Approach

Jian Zhou; Galina Melman; Marcos Pita; Maryna Ornatska; Xuemei Wang; Artem Melman; Evgeny Katz

Logical, responsible, practical. Enzymatic logic gates that process chemical input signals were used to trigger the release of redox‐active iron ions, which produce reactive oxygen species in a catalytic cascade, and thus result in oxidative damage in biomolecules. Functional coupling between enzymatic logic gates and oxidative damage systems resulted in “smart” biochemical ensembles that are activated upon receiving a certain pattern of biochemical signals.


ACS Applied Materials & Interfaces | 2009

Stimuli-responsive hydrogel membranes coupled with biocatalytic processes.

Ihor Tokarev; Venkateshwarlu Gopishetty; Jian Zhou; Marcos Pita; Mikhail Motornov; Evgeny Katz; Sergiy Minko


Nano Letters | 2008

“Chemical Transformers” from Nanoparticle Ensembles Operated with Logic

Mikhail Motornov; Jian Zhou; Marcos Pita; Venkateshwarlu Gopishetty; Ihor Tokarev; Evgeny Katz; Sergiy Minko

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Marcos Pita

Spanish National Research Council

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Jan Halámek

State University of New York System

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Joseph Wang

University of California

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Vera Bocharova

Oak Ridge National Laboratory

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