The present invention relates to methods and apparatuses for manipulation of particles in conductive or highly conductive solutions. The invention finds application principally in the implementation of biologic protocols on cells.
The patent PCT/WO 00/69565 filed in the name of G. Medoro describes an apparatus and method for manipulation of particles via the use of closed dielectrophoretic-potential cages. The force used for maintaining the particles in suspension or for moving them within the microchamber dissipates, by the Joule effect, a power that is proportional to the square of the amplitude of the voltages applied and increases linearly as the electric conductivity of the suspension liquid increases, causing an uncontrolled increase in temperature within the microchamber. The individual control on the operations of manipulation may occur via programming of memory elements and circuits associated to each element of an array of electrodes integrated in one and the same substrate. Said circuits contribute to the increase in temperature by dissipating power in the substrate that is in direct contact with the suspension liquid. There follows an important limitation due to the death of the particles of biological nature present in the specimen for solutions with high electric conductivity limiting the application of said methods and apparatuses to the use of beads or non-living cells.
An example of apparatus that implements said method is represented in
The limitations of the known art are overcome by the present invention, which enables manipulation of biological particles by means of the described technique of the known art preserving the vitality and biological functions irrespective of the forces used and/or of the conductivity of the suspension liquid. In addition to the possibility of manipulation of living cells, the present invention teaches how to reduce the power consumption and how to maximize the levels of performance of said devices given the same power consumption.
The present invention relates to a method and apparatus for manipulation and/or control of the position of particles by means of fields of force of an electrical nature in electrically conductive solutions. The fields of force can be of (positive or negative) dielectrophoresis, electrophoresis, electrohydrodynamics, or electrowetting on dielectric, characterized by a set of points of stable equilibrium for the particles. Each point of equilibrium can trap one or more particles within the attraction basin. Said forces dissipate, by the Joule effect, an amount of power that increases with the square of the voltages applied and increases linearly with the conductivity of the liquid, causing in a short time lysis of the cells contained in the specimen. According to the present invention, the dissipated power can be removed through at least one of the substrates in contact with the suspension liquid in order to maintain the temperature constant or reduce it throughout the step of application of the forces in a homogeneous or selective way, that is constant or variable in time. In this connection, the system can benefit from the use of one or more integrated or external sensors for control of the temperature by means of a feedback control. Reading of the temperature can occur, according to the present invention, using the same read circuit of the optical sensor by reading the output signal of the sensor during the reset step so as to have a signal equal to the threshold voltage, which depends upon the temperature. In a second embodiment of the method, a flow constantly replaces the buffer, transporting and removing the heat by convention outside the microchamber. Forming the subject of the present invention is likewise a method for minimizing the dissipated power given the same levels of performance, dividing the forces into classes, falling within one of which classes are the forces for controlling the particles in a static way, whilst falling within a further class are the forces necessary for displacement of particles. This can occur in a practical way by increasing the number of potentials that supply the electrodes of the device or else by appropriately modulating the amplitudes of the phases applied during displacement of the cages or by means of a timed management of the amplitudes of the voltages.
Forming the subject of the present invention are likewise some practical implementations of the method through which apparatuses for manipulation of particles in conductive solutions are realized. Said apparatus requires the use of a heat pump, which can be obtained by means of a Peltier-effect device or by means of the convective transport of the heat flow absorbed by the substrate. Said convective flow uses a liquid or a gas and requires a second microchamber. Forming the subject of the present invention is likewise an apparatus that exploits the gas law for reducing the temperature by means of variation of the pressure of the gas having the function of performing convective transport or by means of a change of phase from vapour to liquid and vice versa.
In what follows, the term “particles” will be used to designate micrometric or nanometric entities, whether natural or artificial, such as cells, subcellular components, viruses, liposomes, niosomes, microbeads and nanobeads, or even smaller entities such as macro-molecules, proteins, DNA, RNA, etc., such as drops of unmixable liquid in the suspension medium, for example oil in water, or water in oil, or even drops of liquid in a gas (such as water in air) or droplets of gas in a liquid (such as air in water). The symbols VL or VH will moreover designate as a whole two different sets of signals, each containing the voltages in phase (Vphip) or phase opposition (Vphin) necessary for enabling actuation according to the known art.
The aim of the present invention is to provide a method and an apparatus for manipulation of particles in highly conductive solutions. By “manipulation” is meant control of the position of individual particles or groups of particles or displacement in space of said particles or groups of particles.
The method is based upon the use of a non-uniform field of force (F) via which individual particles or groups of particles are attracted towards positions of stable equilibrium (CAGE). Said field of an electrical nature generates heat (Q0) by the Joule effect, which typically has one or more of the following consequences:
1. damage of the cell membrane or of the organelles;
2. lysis and death of the cell;
3. uncontrolled onset of disturbance of a thermal nature such as electrohydrodynamic (EHD) or Brownian motion.
Generation of the Forces
There currently exist various methods for generation of forces for displacing particles, according to the known art, by means of arrays of electrodes (EL) provided on a substrate (SUB1). Typically a lid (LID) is used, which can in turn be an electrode. The substrate (SUB1) and the lid (LID) delimit, respectively from beneath and from above, a microchamber (M), within which the particles (BEAD) in suspension liquid (S) are found. In the case of DEP, the voltages applied are periodic voltages in phase (Vphip), designated by the symbol of addition (+), and in phase opposition (Vphin), designated by the symbol of subtraction (−). By “voltages in phase opposition” are meant voltages 1800 out of phase. The field generates a force, which acts on the particles, attracting them towards points of equilibrium (CAGE). In the case of negative DEP (NDEP), it is possible to provide closed cages of force, according to the known art, if the lid (LID) is a conductive electrode. In this case, the point of equilibrium (CAGE) is provided in a position corresponding to each electrode connected to Vphin (−) if the adjacent electrodes are connected to the opposite phase Vphip (+) and if the lid (LID) is connected to the phase Vphin (−). Said point of equilibrium (CAGE) is normally set at a distance in the liquid with respect to the electrodes so that the particles (BEAD) are, in the stationary state, undergoing levitation. In the case of positive DEP (PDEP), the point of equilibrium (CAGE) is normally found in a position corresponding to the surface on which the electrodes are provided, and the particles (BEAD) are, in the stationary state, in contact therewith. An example of apparatus that implements said method is represented in
For reasons of simplicity, in what follows use will be considered, purely by way of example, without, however, in no way limiting the purposes of the present invention, of closed cages of negative dielectrophoresis (NDEP) as force of actuation for describing the methods and apparatuses (for this reason it is necessary to use a lid that functions as electrode), since in highly conductive solutions the biological particles have a behaviour almost exclusively of negative dielectrophoresis. To persons with ordinary skill in the sector it is evident how it is possible to generalize the methods and apparatuses described hereinafter for use of different forces of actuation and different types of particles.
Displacement of the Cages
By controlling the phases of the voltages applied to the electrodes, it is possible by displacing the position of the points of attraction (CAGE) entraining the particles (BEAD) trapped therein. It is evident to persons skilled in the sector that the rate of displacement increases as the voltage applied increases so that it is advantageous to use high voltages, associated to which is, however, a higher power dissipation, which is frequently intolerable for the purposes of manipulation of biological organisms.
Control of the Temperature by Means of a Heat Pump
An embodiment of the method according to the present invention is shown in
1. increase in temperature: during an initial time interval the heat Q0 is equal to Q01 and smaller than QJ, whilst for time intervals subsequent to t1 the heat Q0 is equal to Q02 and substantially equal to QJ; in this case, the temperature increases during said first time interval and is stabilized to a steady-state value T2 higher than the initial temperature T in the intervals subsequent to t1;
2. constant temperature: in the case where the heat extracted Q0 is equal instant by instant to the generated heat QJ for the entire duration of the application of the forces the mean temperature remains substantially unvaried and equal to the initial temperature T;
3. reduction in temperature: in the case where, during a first time interval, the heat Q0 is equal to Q01 and higher than QJ whilst, for time intervals subsequent to t1, the heat Q0 is equal to Q02 and equal to QJ, the temperature decreases during said first time interval and is stabilized to a steady-state value T2 lower than that of the initial temperature T in the intervals subsequent to t1.
The possible conditions illustrated previously refer to the particular case where the power dissipation QJ is homogeneous in space. In the more general case, the power QJ can vary point by point in the microchamber, and consequently the removal of heat Q0 can be obtained in different ways in order to achieve different results; by way of example that in no way limits the purposes of the present invention we can list two different situations:
1. Q0 homogeneous over the entire surface S2; in this case, the temperature within the microchamber will be proportional point by point to the value of QJ in a neighbourhood of the same point;
2. Q0 equal point by point to QJ; in this case, the temperature within the microchamber will tend to become uniform.
The extraction of heat (Q0) can occur in different ways according to the present invention and will be described in the next sections.
Control of the Temperature by Means of a Heat Pump and Temperature Sensor
Forming the subject of the present invention is also the use of a technique for controlling the temperature of the liquid based upon the use of a heat pump (PT), the ability of which of extracting heat (Q0) is evaluated instant by instant on the basis of the information coming from one or more temperature sensors (TS) inside the microchamber, integrated within the substrate or external thereto. In this connection, a control system (C) receives and processes the information coming from the sensor (TS) and determines the operating conditions of the heat pump (PT), as shown by way of example in
Reading of the Temperature by Means of the Read Circuit of a Photodiode
Forming the subject of the present invention is likewise a method for reading the temperature by means of the read circuit of a photodiode (FD) integrated in the same substrate (SUB1). According to the present invention, reading of the temperature occurs in an indirect way by reading the voltage at output from the read circuit of the photodiode during the reset step so as to detect a threshold voltage that depends upon the temperature. In this connection, in a read scheme as the one shown in
Control of the Temperature by Means of Buffer Flow
A further embodiment of the method according to the present invention is shown in
Minimization of the Power Dissipation
Forming the subject of the present invention is also a method for reducing the dissipation of power given the same levels of performance, where by “performance” is meant the rate of displacement of particles by means of the applied forces F. In this connection, it is necessary to point out that a large number of protocols of biological interest envisage non-simultaneous displacement of all the particles. In this case, two different classes of electrodes may be distinguished:
1. electrodes for control of the static position of particles that belong to a first class (SE1) and are stimulated by means of a first set of signals (VL) for providing static cages (CAGE1), the position (XY11) of which remains unvaried;
2. electrodes for displacement of particles that belong to a second class (SE2) and are stimulated by means of a second set of signals (VH) for providing dynamic cages (CAGE2), the position (XY21) of which is modified.
Use of Constant Signals
The simplest method forming the subject of the present invention is to use for the signals belonging to VH amplitudes that are greater than the ones used for the signals belonging to VL. In fact, maintaining a particle trapped in a static way in a point of stable equilibrium (CAGE1) requires less power than that required for displacing it from a position (XY21) of stable equilibrium (CAGE2) to the adjacent one (XY22), and consequently lower voltages can be used for all the static cages (CAGE1). Whether the electrodes (EL) belong to one of the classes (SE1 or SE2) can be modified in time according to the type of displacement and to the cages involved in said displacement, so that cages (CAGE1) that are static in a first transient can become dynamic (CAGE2) in a subsequent transient, or vice versa.
Amplitude Modulation of the Potentials
A further technique forming the subject of the present invention can be described with the aid of
1. TR1 corresponds to the voltage VH1 and passes through the resting position XY21;
2. TR2 corresponds to the voltage VH2 and passes through the resting position XY21;
3. TR1′ corresponds to the voltage VH1, does not pass through the resting position XY21, and crosses the path TR2 in the point reached by the particle that follows the path TR2 at the instant t1.
In order to reduce the total travelling time with respect to the travel path TR1 or TR2, it is possible to follow a path made up of broken lines of different paths for different time intervals. For example, in the case represented in
1. apply the voltage VH2 up to the instant t1; the particle initially follows the path TR2;
2. apply the voltage VH1 for instants subsequent to t1 up to t2; the particle follows the path TR1′.
The total time required by the particle to reach the new point of equilibrium is in this case shorter than the time required to follow entirely the path determined by application of the potential VH1 or VH2 for the entire duration of the transient. In the most general case, the voltage applied can vary in a discrete way between a generic number of values or continuously. It is evident to persons skilled in the art that it is possible to determine a temporal function that characterizes the evolution in time of the voltage that minimizes the travelling time. Said function can vary for different types of particles and can be determined experimentally or by means of numeric simulations.
Modulation in Time of the Potentials
A further embodiment of the method according to the present invention is shown in
Apparatus for Temperature Control by Means of Peltier-Effect Cells
Forming the subject of the present invention is also an apparatus for removal of the heat from the space inside the microchamber (M). By way of non-limiting example, some possible embodiments are provided based upon the use of Peltier-effect cells.
Apparatus for Temperature Control by Means of External Flow of Liquid or Gas
Forming the subject of the present invention is also an apparatus for removal of the heat from the space inside the microchamber (M) by means of forced or natural convection. By way of non-limiting example, some possible embodiments are provided based upon the use of a liquid or gas made to flow in contact with the surface S2 of the substrate SUB1 (
Apparatus for Maximizing Convective Heat Exchange
Forming the subject of the present invention are likewise some techniques for maximizing extraction of heat by forced or natural convection.
Increase of the Exchange Surface and/or Creation of Turbulence
Convective heat exchange between one or more substrates (SUB1) and the liquid (LH) can be maximized by appropriately modifying the surface S2. By way of non-limiting example,
1. increasing the total exchange surface; and
2. favouring onset of turbulence in the cooling liquid (LH), thus improving the heat exchange between the substrate (SUB1) and the liquid (LH).
It is evident to persons skilled in the art that different profiles for the surface S2 are possible.
Change of Phase from Liquid to Vapour
Heat exchange between the substrate (SUB1) and the cooling liquid or gas can be improved if a pressurized vapour is used so that it will condense in the proximity of the heat-exchange surface S2. In this case, the energy required for phase change is added to that due to the difference in temperature between S2 and LH.
Variation of Pressure
If gas is used, heat exchange between the substrate (SUB1) and the cooling liquid (LH) can be increased by reducing the pressure of the cooling gas in the proximity of the cooling microchamber (MH). In this way, the temperature of the gas drops, and the flow of heat Q0 absorbed by the gas increases.
Number | Date | Country | Kind |
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BO2005A000643 | Oct 2005 | IT | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IB06/02965 | 10/23/2006 | WO | 00 | 10/10/2008 |