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1.
Nat Commun ; 12(1): 4595, 2021 07 28.
Artigo em Inglês | MEDLINE | ID: mdl-34321459

RESUMO

Constriction of the cytokinetic ring, a circular structure of actin filaments, is an essential step during cell division. Mechanical forces driving the constriction are attributed to myosin motor proteins, which slide actin filaments along each other. However, in multiple organisms, ring constriction has been reported to be myosin independent. How actin rings constrict in the absence of motor activity remains unclear. Here, we demonstrate that anillin, a non-motor actin crosslinker, indispensable during cytokinesis, autonomously propels the contractility of actin bundles. Anillin generates contractile forces of tens of pico-Newtons to maximise the lengths of overlaps between bundled actin filaments. The contractility is enhanced by actin disassembly. When multiple actin filaments are arranged into a ring, this contractility leads to ring constriction. Our results indicate that passive actin crosslinkers can substitute for the activity of molecular motors to generate contractile forces in a variety of actin networks, including the cytokinetic ring.


Assuntos
Actinas/metabolismo , Proteínas Contráteis/metabolismo , Miosinas/metabolismo , Citoesqueleto de Actina/metabolismo , Actomiosina/metabolismo , Animais , Divisão Celular , Proteínas Contráteis/genética , Citocinese , Drosophila melanogaster/metabolismo , Humanos , Proteínas dos Microfilamentos
2.
J Biol Phys ; 42(1): 1-8, 2016 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-26174548

RESUMO

The knowledge of mechanisms underlying interactions between biological systems, be they biomacromolecules or living cells, is crucial for understanding physiology, as well as for possible prevention, diagnostics and therapy of pathological states. Apart from known chemical and direct contact electrical signaling pathways, electromagnetic phenomena were proposed by some authors to mediate non-chemical interactions on both intracellular and intercellular levels. Here, we discuss perspectives in the research of nanoscale electromagnetic interactions between biosystems on radiofrequency and microwave wavelengths. Based on our analysis, the main perspectives are in (i) the micro and nanoscale characterization of both passive and active radiofrequency properties of biomacromolecules and cells, (ii) experimental determination of viscous damping of biomacromolecule structural vibrations and (iii) detailed analysis of energetic circumstances of electromagnetic interactions between oscillating polar biomacromolecules. Current cutting-edge nanotechnology and computational techniques start to enable such studies so we can expect new interesting insights into electromagnetic aspects of molecular biophysics of cell signaling.


Assuntos
Micro-Ondas , Radiobiologia/métodos , Substâncias Macromoleculares/metabolismo
3.
PLoS One ; 9(1): e86501, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-24497952

RESUMO

The regulation of chromosome separation during mitosis is not fully understood yet. Microtubules forming mitotic spindles are targets of treatment strategies which are aimed at (i) the triggering of the apoptosis or (ii) the interruption of uncontrolled cell division. Despite these facts, only few physical models relating to the dynamics of mitotic spindles exist up to now. In this paper, we present the first electromechanical model which enables calculation of the electromagnetic field coupled to acoustic vibrations of the mitotic spindle. This electromagnetic field originates from the electrical polarity of microtubules which form the mitotic spindle. The model is based on the approximation of resonantly vibrating microtubules by a network of oscillating electric dipoles. Our computational results predict the existence of a rapidly changing electric field which is generated by either driven or endogenous vibrations of the mitotic spindle. For certain values of parameters, the intensity of the electric field and its gradient reach values which may exert a not-inconsiderable force on chromosomes which are aligned in the spindle midzone. Our model may describe possible mechanisms of the effects of ultra-short electrical and mechanical pulses on dividing cells--a strategy used in novel methods for cancer treatment.


Assuntos
Simulação por Computador , Modelos Biológicos , Fuso Acromático/fisiologia , Acústica , Fenômenos Eletromagnéticos , Humanos , Microtúbulos/fisiologia , Mitose
4.
Eur Biophys J ; 40(6): 747-59, 2011 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-21394502

RESUMO

This paper describes a proposed biophysical mechanism of a novel diagnostic method for cancer detection developed recently by Vedruccio. The diagnostic method is based on frequency selective absorption of electromagnetic waves by malignant tumors. Cancer is connected with mitochondrial malfunction (the Warburg effect) suggesting disrupted physical mechanisms. In addition to decreased energy conversion and nonutilized energy efflux, mitochondrial malfunction is accompanied by other negative effects in the cell. Diminished proton space charge layer and the static electric field around the outer membrane result in a lowered ordering level of cellular water and increased damping of microtubule-based cellular elastoelectrical vibration states. These changes manifest themselves in a dip in the amplitude of the signal with the fundamental frequency of the nonlinear microwave oscillator-the core of the diagnostic device-when coupled to the investigated cancerous tissue via the near-field. The dip is not present in the case of healthy tissue.


Assuntos
Biofísica/métodos , Campos Eletromagnéticos , Microtúbulos/efeitos da radiação , Neoplasias/diagnóstico , Neoplasias/patologia , Biofísica/instrumentação , Estudos de Casos e Controles , Elasticidade , Eletricidade , Humanos , Microtúbulos/química , Microtúbulos/metabolismo , Micro-Ondas , Neoplasias/metabolismo , Vibração , Água/química , Água/metabolismo
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