Fluidic devices for analyzing body fluids and related methods
The fluidic device addresses the limitations of existing systems by providing simultaneous and accurate measurement of mass density, weight, and shape of particles from 1 to 5,000 μm, enhancing precision and reproducibility in industrial and research applications.
Patent Information
- Application Number
- JP2022555898
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-20
- Filing Date
- 2021-03-19
- Publication Date
- 2025-10-22
- Estimated Expiration
- 2041-03-19
AI Technical Summary
Existing devices are limited in size range and cannot simultaneously measure mass density, weight, and shape of particles larger than tens of micrometers, such as spheroids and organoids, and existing methods are expensive or provide inaccurate, non-reproducible results.
A fluidic device with a settling chamber, pump system, detection device, and processor for continuous, automatic measurement of mass density and weight, capable of handling particles from 1 to 5,000 μm, with features like temperature control, recirculation, and centering to improve accuracy.
Enables simultaneous, accurate, and economical measurement of mass density, weight, and shape of diverse particles, including biological samples, with improved precision and reproducibility, suitable for industrial and research applications.
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Abstract
Description
[Technical Field]
[0001] The invention described herein provides an apparatus and related methods for measuring the mass density, weight, size, and shape of small bodies such as microspheres, cells, spheroids, and organoids. In particular, the structure of this apparatus is adapted to measure small bodies having sizes between 1 and 5,000 μm.
[0002] Gathering detailed information on these parameters could be of great importance in industrial and research fields such as pharmacology, cell biology, agriculture, food and environmental fields, etc. This need is driven by the large-scale use of single cells and cell aggregates in various biomedical applications.
[0003] In particular, cells exhibit more pronounced changes in mass density than in size, making obtaining reliable data on this value challenging. Therefore, determining this value can be an effective analytical tool for monitoring cellular responses to external stimuli, such as drugs or environmental changes. Furthermore, simultaneously obtaining information on cell volume and mass density can correlate with biological activity and provide important information, including the level of organization and viability of cell aggregates within the cell aggregate. [Background technology]
[0004] Methods for measuring the mass and density of cells, corpuscles or molecules have become possible with the advent of nanoelectromechanical systems (NEMS), and in particular with the development of nanomechanical resonators.
[0005] The system resonates when subjected to a specific frequency that depends on its mass, structure, and stiffness. The mass of the sample is measured by the change in resonant frequency due to the interaction between the sample and the resonator. The biological applications of this technique were initially limited by the need to operate under vacuum conditions. Suspended microchannel resonators (SMRs) overcome this obstacle, allowing the measurement of the density of single cells in solution and the acquisition of statistics of the density distribution. Summary of the Invention [Problem to be solved by the invention]
[0006] However, due to the use of micrometer-sized fluid channels, the aforementioned systems can only analyze cells with a size of tens of micrometers or less, which is a significant technical limitation for applications or studies of cell aggregates with diameters reaching several millimeters, such as spheroids and organoids.
[0007] There are known methods for calculating the density of phytoplankton and polystyrene spheres using sedimentation velocity. However, this method does not allow for the average size of spheroids and organoids. More importantly, the data is collected in a single step, making it impossible to repeat the measurements to obtain a more accurate output.
[0008] Another technique uses an optically induced electrokinetic (OEK) system to lift corpuscles that have been previously introduced into microfluidic channels.
[0009] Such solutions are expensive to build and are not adapted to measure particles with sizes greater than 20 μm. [Means for solving the problem]
[0010] A first aspect of the present invention provides a fluidic device for measuring at least one of the mass density and weight of a particulate. The fluidic device includes a settling chamber in communication with an inlet channel configured to be immersed in a liquid. The fluidic device further includes a pump system connected to the settling chamber. The pump system is configured to control the flow of liquid in the settling chamber. A processor of the fluidic device is configured to obtain particulate data associated with the particulates in at least one region of the settling chamber and calculate at least one of the mass density and weight of the particulates based on the received data.
[0011] The liquid may be a culture medium or solution, such as saline, configured to store and preserve one or more bodies or aggregates introduced into the sedimentation chamber.
[0012] The presence of an inlet channel directly connected to the sedimentation chamber allows individual mass density and weight measurements to be performed on the corpuscle population. This configuration allows such measurements to be performed continuously and automatically. These measurements, along with corpuscle data such as corpuscle size and shape, are important for studying cell dynamics or developing biological models of human organs, for example.
[0013] In an embodiment of the first aspect, the fluidic device further comprises at least one detection device configured to acquire particle data and provide the particle data to the processor.
[0014] In a further embodiment of the fluidic device, the processor is configured to control a pumping system based at least in part on the received corpuscle data.
[0015] In a further embodiment, the particle data includes at least one of velocity, shape, position and size of the particle.
[0016] In a further embodiment, the fluidic device further comprises a temperature controller configured to provide a temperature measurement of the liquid in the settling chamber to a processor, the processor configured to calculate at least one of a mass density and a weight of the small bodies based on the temperature measurement.
[0017] Measuring the liquid temperature allows accurate measurements to be obtained even when the fluidic device is not in a controlled temperature environment. Indeed, the movement of the particles in the settling chamber also depends on the viscosity of the liquid in which they move, which in turn depends on the nature of the particular liquid used and its temperature.
[0018] In a further embodiment, the temperature controller is configured to adjust the temperature of the liquid in the settling chamber based on at least one of information provided by the processor and a predetermined temperature.
[0019] Controlling the liquid temperature not only ensures measurement accuracy but also maintains ideal conditions for preserving the corpuscles. For example, if the corpuscles are made of biological or biomaterials, maintaining them at 37°C is ideal, although depending on the protocol in use, temperature changes may be required to observe specific biological phenomena.
[0020] In a further embodiment, the fluidic device further comprises a movable support configured to at least partially house the at least one detection device, and the processor is configured to guide the movable support based at least in part on the received particle data.
[0021] The presence of a movable support allows the moving particles to be followed, improving the accuracy of mass density and weight measurements, and making it possible to perform measurements of fast-moving particles, especially in long sedimentation chambers. Furthermore, three-dimensional information about the particles can be obtained by observing the sample from different angles or at different focal planes. The obtained data on the three-dimensional shape of the object allows for a proper reconstruction of the viscosity coefficients, which in turn allows for higher resolution in the measurement of weight and mass density.
[0022] In a further embodiment, the settling chamber further comprises a channel communicating with the inlet channel, the channel having a portion with a reduced inner cross section.
[0023] In particular, the settling chamber has at least two portions with a flow passage having a first portion with a larger internal cross-sectional area than the second portion.
[0024] The second portion is suitably arranged such that the bodies in the settling chamber are displaced from the second portion to the first portion in the absence of a flow of liquid in which the bodies are immersed.
[0025] The change in the cross-sectional area of the sedimentation chamber results in convergent streamlines. During the process of generating flow in the sedimentation chamber, the particles are displaced along these streamlines toward the center of the sedimentation chamber. This phenomenon avoids measurement noise that depends on the interaction of the particles with the sides of the sedimentation chamber, enabling more accurate measurements. Furthermore, since the centering of the particles is guaranteed even during long-term measurements, it becomes possible to store samples in the sedimentation chamber in biological experiments. Furthermore, centering is a useful aspect for sample delivery, as it reduces the possibility of sample loss in fluidic systems due to, for example, adhesion to the surfaces of the flow channel.
[0026] In a further embodiment, the settling chamber includes a plurality of channels connected in parallel to one another and connected to the inlet channel, each channel connected to a flow regulation mechanism, and the processor is configured to receive input data related to the particles in the inlet channel and control the flow regulation mechanism based on the input data.
[0027] The presence of multiple sedimentation chambers allows particles to be introduced into the appropriate sedimentation chamber based on their size. Thus, measurements of particles of significantly different sizes, for example, from 1 μm to 5 mm, can be performed in a single device. Alternatively, the presence of multiple sedimentation chambers can allow for greater flow rates in measurements of particle populations.
[0028] In a further embodiment, the fluidic device further comprises a recirculation flow path connected in parallel to the settling chamber, the recirculation flow path comprising a recirculation device, the processor being configured to control the recirculation device to recirculate the liquid in the settling chamber.
[0029] The presence of a recirculation system avoids the presence of multiple particles in the fluid system, thus allowing repeated non-destructive analysis and recovery of single particles, and also reduces the amount of analytical liquid used during long-term measurements.
[0030] In a further embodiment, the fluidic device further comprises a secondary flow path in communication with the settling chamber, and the processor is configured to selectively control flow in the secondary flow path to introduce liquid into and / or remove liquid from the settling chamber through the secondary flow path.
[0031] The secondary flow path may be connected to the settling chamber directly or via an inlet flow path or secondary fluid circuit.
[0032] The presence of at least one secondary flow path allows new liquids to be introduced into the sedimentation chamber during the measurement. This allows, for example, the execution of biological experimental protocols. Furthermore, it also allows the introduction of new liquids adapted to the precise measurement of specific microparticles. For example, from a panel of measurement liquids, a liquid whose mass density is closest to that of the microparticles can be selected, thereby improving the precision and accuracy of the measurement. Furthermore, the same secondary flow path can also be used to extract samples and sort them into specific containers. For example, by extracting specific fluids, different microparticles can be collected in different containers depending on the results of the performed measurement.
[0033] A second aspect of the present invention provides a method for measuring at least one of mass density and weight of particles, wherein particles to be analyzed are introduced into a settling chamber of a fluidic device via an inlet channel immersed in a liquid. Particle data is acquired about the particles in at least one region of the settling chamber. The particles move through the stationary liquid in the settling chamber. At least one of mass density and weight is calculated based on the received data.
[0034] Measurements can be performed with particles moving through a stationary liquid. Stationary liquid means that there is no flow in the settling channel. In one embodiment, the particles accelerate in a force field. For example, the settling chamber can be arranged so that the particles move through the stationary liquid according to gravitational acceleration.
[0035] In an embodiment of the second aspect of the present invention, acquiring the particle data comprises acquiring the particle data by at least one detection device, and providing the acquired particle data to a processor.
[0036] In a further embodiment, the method further comprises controlling flow in the settling chamber based at least in part on the received corpuscle data.
[0037] In a further embodiment, the method further comprises measuring a temperature of the liquid in the settling chamber and calculating at least one of a mass density and a weight of the small bodies based on the temperature measurement.
[0038] In a further embodiment, the method further includes adjusting the temperature of the liquid in the settling chamber based on at least one of the information provided by the processor and the predetermined temperature.
[0039] In a further embodiment, the method further includes at least partially directing the at least one detection device based at least in part on the received body data.
[0040] In a further embodiment, the method further comprises the step of recirculating the liquid in which the corpuscles to be analyzed are immersed in a recirculation channel connected in parallel to the sedimentation chamber.
[0041] In a further embodiment, the method further comprises replacing the liquid in which the corpuscles to be analyzed are immersed with a second liquid different from the liquid before and / or after measuring at least one of mass density and weight.
[0042] In a further embodiment, the method further includes selecting the particles based on one of mass density, weight, size, and shape, and collecting the selected particles in a predetermined container based on at least one of mass density, weight, size, and shape of the particles.
[0043] The advantages discussed above in relation to the fluidic device also apply to the method and embodiments thereof described in relation to the second aspect of the invention. [Brief explanation of the drawings]
[0044] [Figure 1] FIG. 10 is a front view of the sedimentation chamber containing the analysis medium and particles, showing the forces involved and terminal velocities. [Figure 2] FIG. [Figure 3] 1 illustrates an embodiment of a temperature control device. [Figure 4] Linear regression data for vertical displacement of the corpuscle as a function of time. [Figure 5] Figure 1 shows experimental results of the average density obtained for the seven PS microspheres measured for each analyzed batch (20, 50, 90 μm) and the respective standard deviations obtained for seven repetitions of each measurement. [Figure 6] (A) Experimental results for the average density obtained for three batches of PS microspheres compared to the manufacturer's published values, along with the standard deviation of each value. (B) Experimental terminal velocities for three types of microspheres compared to the theoretical velocities. [Figure 7] 1A shows the centering device. 100c shows an enlarged view of part 100c (A, B) of the centering of the corpuscles by pulsed flow (B) and variable flow (C). [Figure 8]FIG. 10 shows a settling chamber with multiple flow channels with different volumes connected to independent flow control mechanisms to accommodate the diversity of small bodies. [Figure 9] 1 illustrates a technical solution related to measuring the displacement of large particles by recognizing their passage from different target positions at adjustable known distances. [Figure 10] Schematic showing a dual camera system for bilateral morphological body feature extraction. [Figure 11] FIG. 1 illustrates an embodiment relating to obtaining three-dimensional information about a body based on obtaining images reflected from multiple angles. [Figure 12] 10A-10C illustrate embodiments relating to the acquisition of three-dimensional images based on a detector device orbiting relative to a cylindrical settling chamber. [Figure 13] FIG. 1 illustrates an embodiment including a recirculation flow path and associated secondary pumping system. [Figure 14] FIG. 10 illustrates an embodiment including a secondary flow path for the introduction and exchange of additional analysis media. [Figure 15] FIG. 10 shows a graph of spheroid diameter and density over time to assess maturity before drug treatment. [Figure 16] FIG. 10 shows an embodiment specialized for sorting small bodies. DETAILED DESCRIPTION OF THE INVENTION
[0045] It is now common to study bodies of different nature, such as cells, microspheres, spheroids, organoids and / or other forms of body aggregates, in a single medical or biological laboratory.
[0046] Considering the vast variety of samples and the interest in measuring weight, density, size, and shape, the embodiments and examples described below provide a technical solution that enables the measurement of such parameters by employing a single device and its associated different methods of use. The present invention provides a first solution that enables such measurements. In one embodiment, measurements of weight, density, size, and shape can be performed concomitantly, simultaneously, or in a combined manner for samples with sizes ranging from 1 to 5000 μm. In addition to the advantage of being able to handle a wide size distribution of samples with a single device, this allows for highly accurate correlation between data obtained for individual particles.
[0047] Embodiments of the fluidic devices and methods disclosed herein enable such analyses in an economical, accurate, and non-invasive manner, and can be used to perform measurements on inorganic samples, as well as organic and biological samples.
[0048] The following paragraphs describe several exemplary embodiments of the present invention. By way of example and for ease of understanding, the embodiments are described with respect to the analysis of biological samples, such as cells or cell aggregates, hereinafter collectively referred to as "body." However, it is understood that the methods and apparatus according to the present invention described herein are applicable to measuring the mass density, weight, size, and shape of non-biological body parts. In particular, the examples with reference to the exemplary embodiments described below are applicable to analyzing body parts other than cells or cell aggregates. Thus, in the context of embodiments of the present invention, the term "body," used to generally refer to cells, cell aggregates, or biological material, can also be used to refer to microscopic body parts, residual body parts from industrial manufacturing processes, airborne airborne dust particles, pollen, vesicles, oil droplets in aqueous suspension, and gas bubbles in liquids.
[0049] Similarly, in embodiments of the present invention, the term "analysis medium" or the more general term "liquid" is used to refer to a medium that is compatible with cell culture. However, it will be apparent to those skilled in the art that the terms "analysis medium" and "liquid" should be interpreted in their most general sense. In particular, it will be apparent to those skilled in the art that, depending on the design requirements and the nature of the corpuscles to be analyzed, the liquid may be a cell culture medium or a liquid of another nature, such as an aqueous-based solution or oil.
[0050] The present invention has the objective of filling a gap in the prior art regarding the possibility of applying a single technical device and associated method of use to the concomitant or simultaneous measurement of mass density, weight, size and / or shape of small bodies of different sizes. In fact, currently existing devices can only partially function within a narrow size distribution. Furthermore, these devices do not allow for simultaneous or combined measurement of such parameters. This results in fragmented information that is difficult to correlate.
[0051] Although the subject matter has been described with reference to the accompanying drawings, the reference numerals used in the detailed description of the invention and in the claims are only used for the understanding of the invention and do not limit the scope of protection of the claims.
[0052] The present invention discloses a novel device and related methods of use that can perform simultaneous measurements of mass density, weight, size and / or shape of biological and non-biological bodies such as microspheres, cells, spheroids, organoids, etc., having sizes between 1 and 5000 μm.
[0053] After a detailed description of various embodiments adapted to obtain such measurements, several methods of use of the present invention are disclosed. The latter are directed to applications of the basic system, with particular reference to its usefulness in the biomedical field. The present invention is adapted to analyze gravitationally moving particles (420) in a quiescent liquid (see FIG. 1). The motion of a particle is primarily influenced by its mass density, volume, shape, orientation, and the mass density and viscosity of the surrounding liquid.
[0054] FIG. 2 shows a perspective view of one embodiment of the present invention.
[0055] The embodiments described with reference to Figures 3-16 provide improvements and developments of the fluidic device of Figure 1. Thus, each feature described below with reference to one drawing may be combined with features described with reference to other drawings.
[0056] The fluidic device includes a settling chamber 100, a pump system 200, a detection device 300, and a processor 500. The movement of the particles 420 occurs within a channel with permeable walls, referred to herein as the settling chamber 100. The pump system 200 includes a flow generating system 230, which may be, for example, a peristaltic pump or a pressure control system. The inlet channel 210 and the outlet channel 220 may be connected to a loading tank or an unloading tank, or alternatively, they may be used as vents or holes. The system, including the detection device 300 connected to the processor 500, performs the dual role of monitoring the movement of the particles 420 and measuring their shape and size. Both the settling chamber 100 and the detection device 300 are sized to accurately measure the movement, shape, and size of the particles 420, as described below.
[0057] 2 includes a detection device 300, the detection device 300 may be omitted. In alternative embodiments, the fluidic device can be configured without the detection device 300.
[0058] In particular, in the context of embodiments of the present invention, "measuring the shape and size" of a small body means measuring any characteristic of the small body that can be used to describe or approximate the three-dimensional shape of the small body, which corresponds to measuring the radius of the small body if the small body is spherical, and to measuring other geometric characteristics of the small body if the small body is approximately spherical and non-spherical.
[0059] For proper operation of the device, particles 420 contained within the analysis medium 450 are drawn from the tank 400 and introduced and transported into the sedimentation chamber 100 via the inlet channel 210. The transport of particles 420 within the pump system 200 is achieved by the operation of the flow generating system 230. After the introduction of particles 420, the flow is interrupted and particles 420 move within the analysis medium 450 under the force of gravity. In the absence of other flows and after a transient period due to the acceleration process, particles 420 reach a constant velocity, which is defined as terminal velocity, drift velocity, or settling velocity.
[0060] Once the measurement has been performed, the inlet channel 210 and the outlet channel 220 can be used independently for collection of the corpuscles 420 .
[0061] The device may be used for relative measurements to assess differences between different corpuscles 420, or for absolute measurements. In the latter case, it is useful to know the temperature to determine the mass density and viscosity of the analysis medium 450. In an embodiment of the invention, the device is adapted for use in a controlled temperature environment, such as an incubator. Alternatively, the temperature may be measured during the experiment. In an embodiment of the invention (see FIG. 3), the average temperature of the analysis medium 450 is measured by a temperature control device 600 consisting of at least one sensor 610 located near the sedimentation chamber 100. The processor 500 then applies the calculated viscosity as a function of the measured temperature.
[0062] In other embodiments, if operating conditions require a specific temperature (e.g., 37°C for a live biological sample), temperature controller 600 is configured to adjust the temperature of the liquid in sedimentation chamber 100 based on information provided by processor 500, such as the current temperature, the type of body 420, the viscosity of the liquid, and the current value of the viscosity of the liquid. In a specific embodiment, temperature controller 600 controls temperature adjustment unit 620 to maintain a specific temperature during analysis. For example, temperature controller 600 may include multiple heaters (620a and 620b) and sensors (610a and 610b) located at various locations, such as near the fluidic device, pump system 200, and particularly near sedimentation chamber 100.
[0063] From a physical point of view, in order to improve the accuracy of the data obtained, the motion of the particle 420 is considered when it reaches its terminal velocity and not during the transient period. The relative velocity v(t) of the particle 420 with respect to the analysis medium 450 is found by solving the dynamic equations in the equations of motion (01) and (02).
[0064] F=m p a=(ρ p -ρ l )V p g-kv ‥(01).
[0065] v(t)=v d +(v0-v d )e (-t / τ) ...(02).
[0066] where τ is the transient period of the motion of the corpuscle 420, and is expressed by the relation (03).
[0067] τ=m p / k=(ρ p V p ) / (6πηr)=(2 / 9η)ρ p r 2 ...(03).
[0068] Here, "m p” is the small body mass, “ρ p " is the mass density of the particle, "a" is the acceleration of the particle, "ρ l ” is the mass density of the analysis medium, “V p ” is the corpuscle volume, “v d ” is the particle drift velocity, “v0” is the particle initial velocity, “r” is the particle radius, “k” is the friction coefficient, “η” is the viscosity of the analyzed medium, and “g” is the gravitational acceleration.
[0069] To understand the extent of this transient period, the following calculations are performed on biological bodies 420 (living tissues) of different sizes and types in aqueous solutions. The viscosity of the aqueous solution is approximately 1 mPa·s, and the mass density of the biological bodies 420 is an average of 1020 fg / μm. 3 For biological corpuscles 420 with diameters between 1 and 2000 μm, τ varies on the order of 60 ns (for a 1 μm diameter) to 250 ms (for a 2000 μm diameter). During this time interval, the corpuscles 420 reach terminal velocity in a short time. Because this time interval is so short, the acceleration of the corpuscles 420 does not affect the measurement, and the motion of the corpuscles 420 can be considered as uniform linear motion.
[0070] In other examples of embodiments of the present invention, larger particles can be measured, particularly particles 420 with diameters of 2-5 mm. In this example, for a sample with a diameter of 5 mm, the transient period can reach 1.5 seconds, which must be taken into consideration.
[0071] For example, in an embodiment of the present invention, the particle 420 is transported a predetermined distance above the active area of the detection device 300 so that the transient period is excluded from the measurement.
[0072] In other embodiments of the present invention, the active area of the detection device 300 is large enough, and the settling chamber 100 is long enough, to allow detection of the complete motion of the particle 420, including acceleration and terminal velocity. Data on the motion of the particle 420 collected during transient periods may not be taken into account when calculating terminal velocity.
[0073] In one embodiment of the present invention, the theory for measurement is based on a refinement of Stokes' law, which is as follows:
[0074] v d =(ρ p -ρ l )V p g / (6πηr)=(2 / 9η)g(ρ p -ρ l )r 2 ...(1).
[0075] ρ p =(9 / 2g)η(v d / r 2 )+ρ l ...(2).
[0076] W p =ρ p V p ...(3).
[0077] where W p is the weight of the corpuscle 420.
[0078] To demonstrate the reliability of the invention, a specific example thereof (see Figure 2) was used to measure the mass density and size of 20-90 μm polystyrene microspheres.
[0079] In this embodiment, the detection system 300 is an optical microscope system with 4x magnification. The sedimentation chamber 100 is formed inside a transparent polydimethylsiloxane (PDMS) chip covalently bonded to a slide. The sedimentation chamber 100 is a structure with a length of 6 cm and a cross section of 1 x 1 mm. The corpuscles 420 are placed above the sedimentation chamber 100 by a flow generation system 230, which in this embodiment is a peristaltic pump. Before the sample arrives at the sedimentation chamber 100, the sample is transported through a pump system 200, which in this embodiment is a polytetrafluoroethylene (PTFE) tube. The processor 500 is a computer and associated software that can process images collected by the microscope unit. From these images, a two-dimensional projection of the shape of the corpuscles 420 and their terminal velocities are estimated. The latter is calculated by linear regression obtained from the displacement of the center of mass of the corpuscles 420 as a function of time (see Figure 4). By employing the aforementioned mathematical model, the processor 500 calculates the mass density and diameter of the particles 420. This procedure is repeated multiple times for each particle 420 to obtain statistically significant results.
[0080] To verify the present invention, this example was used to measure particles with known density and diameter. In particular, three batches of polystyrene (PS) (Polybead®, Polysciences Inc., USA) microspheres with diameters of 20, 50, and 90 μm were selected. According to the product sheet provided by the vendor, the average mass density of the PS spheres was 1.050 ± 10 fg / μm. 3 To increase statistical significance, seven different units were analyzed for each microsphere batch, and measurements were repeated seven times for each unit. Figure 5 shows the average densities of the seven different microspheres analyzed and their respective standard deviations estimated from the seven replicates for each batch. As expected from the experiment, the standard deviations for measurements made on all microspheres were comparable, demonstrating the precision and reliability of the example.
[0081] Furthermore, the determined density of PS microspheres was found to be significantly more accurate than the average value disclosed by the manufacturer (see Figure 3a). In particular, the average standard deviation was found to be an order of magnitude lower than the commercial value (see Figure 6a). Furthermore, a comparison of the theoretical (see Equation (1) above) and experimental (see Figure 6b) terminal velocities confirmed the high accuracy of the results.
[0082] Specifically, the configuration shown in Figure 2, which was used for the validation analysis performed on PS microspheres, may also be applied to the analysis of larger biological samples such as spheroids or organoids.
[0083] The relevance of this application lies, for example, in the possibility of applying the methods presented herein to monitor the growth stage of spheroids. This is an important aspect, allowing the operator to determine the moment when the spheroid assembly reaches the required or desired maturity for further biological experiments. Indeed, during spheroid formation, compaction occurs over time, starting from disintegrated cell aggregation and progressing to a compact aggregate stage. This is particularly important in the biomedical field, where the biological materials used for analysis are not standardized and the results are less reliable. By simultaneously measuring the weight, shape, and size of the sample in addition to the bulk density, optimal conditions for standard spheroid growth can be determined. Because spheroids are generated from different cell types or combinations, the time required for maturation and the characteristic mass density at maturity vary depending on the spheroid type. Determining mass density during spheroid formation is an important application, particularly in industrial drug screening processes. The effectiveness of drug treatments can be assessed by examining drug absorption into the spheroids themselves. In fact, drug permeability is known to be highly correlated with aggregate compactness and, therefore, mass density. Therefore, evaluating the correct structure of spheroids from the perspective of mass density can significantly improve the reproducibility of results. The present invention aims to address this issue, which is a major limitation in the application of 3D biological models for drug discovery and development.
[0084] However, spheroids are not the only type of body420 used in the biomedical field. From single cells to organoids, the diverse properties of body420 are reflected in the wide range of sizes they cover. Thus, the ability to simultaneously measure the mass density, weight, size, and shape of body420, which are of interest to researchers, using a single device would have a major impact on the scientific community.
[0085] In this regard, the following paragraphs describe methodological and / or technical embodiments that have been employed to expand the size range of analyzable bodies 420.
[0086] For example, in one application of the present invention, analyzing micrometer-sized particles 420 requires high-magnification optics with sufficient resolution to detect their size and shape. Another application relates to the fact that millimeter-sized particles 420 generally tend to have higher fall velocities than micrometer-sized particles 420. Therefore, the settling chamber 100 must be long enough to allow for measurement of the terminal velocity of the particles 420. Therefore, the correct selection of the particular detection device 300 and settling chamber 100 is relevant to broadening the field of operation of the present invention.
[0087] In the embodiment described above, the detection device 300 comprises an image acquisition system that captures a series of frames of the particle 420 during its displacement within the sedimentation chamber 100. The images are processed to obtain the size, shape, and center of mass position of the particle 420 over time. The terminal velocity is calculated using a linear regression algorithm, as shown in FIG. 4 . In this specific embodiment, a sufficient number of images of the moving particle 420 must be acquired to obtain the correct number of points used in the regression algorithm. For example, if the particle 420 is spherical, the allowable number of points is five; however, if the particle 420 is non-spherical, the allowable number of points may be greater due to increased uncertainty in identifying the center of mass of the particle 420. Specifically, the number of points that the device can acquire during a measurement depends on various experimental and technical factors. These include the terminal velocity of the particle 420, the length of the portion of the sedimentation chamber 100 observable by the recognition system, the frame rate, and the optical resolution. These factors are summarized in a formula that includes the number of analytical points detected under specific technical and experimental conditions, here expressed as the following relation (04):
[0088] Number of frames = Min((camera fps) / v T ,1 / (optical resolution)·observed drop length ‥(04).
[0089] In certain examples of embodiments of the present invention, the number of allowable analysis points is fixed to a particular value, such as 10. Conversely, in other embodiments of the present invention, the number of allowable analysis points is variable and adjusted by an optimization algorithm. For example, the algorithm may adjust the ideal number of analysis points based on the degree of fit to the position data of the body 420 as a function of time.
[0090] Furthermore, to improve the accuracy of the measurement, the device allows the particles 420 to be centered in the sedimentation chamber 100 before performing the analysis. For example, in an embodiment of the present invention, the device uses a centering system for the particles 420 by structural changes and / or narrowing of the sedimentation chamber 100. The operating principle is based on the adoption of a specific geometry of the sedimentation chamber 100 that allows a laminar flow having a non-zero horizontal component to be obtained therein. Under such conditions, by appropriate control of the pump system 200, the particles 420 can be transported to a region of the sedimentation channel where the flow has a zero horizontal component. Hereinafter, more generally in the context of the present invention, "vertical" means a direction parallel to the gravity vector, and "horizontal" means any vector perpendicular to the vertical direction.
[0091] For example, if the settling chamber 100 is arranged vertically and the particle 420 is located at a position within the settling chamber 100 where the flow velocity has a non-zero horizontal component, the particle 420 will be subjected to a horizontal thrust due to the horizontal component of the flow velocity. In a specific embodiment of the present invention, as shown in Figure 7A, the settling chamber 100 is arranged vertically and is composed of two sections with different horizontal cross-sections, with the first section (100a) having a relatively larger cross-sectional area being positioned below the second section (100b) having a relatively smaller cross-sectional area. Furthermore, in this embodiment, the two sections (100a) and (100b) of the settling chamber (100) are coaxially connected by a middle section having an inclined section (100c). The time required to center the body 420 may vary depending on the angle of inclination of the wall of the inclined portion 100c, the cross-sectional area ratio of the second portion (100b) to the first portion (100a), or the relationship between the cross-sectional areas of the two portions (see FIG. 7A). In any case, the specific values of these parameters are not essential to the operation of the centering system. In yet another embodiment of the invention, the intermediate portion with the inclined portion (100c) is replaced by a wall with a discontinuous change in cross-sectional area or at 90° to the vertical.
[0092] FIG. 7A shows an example of a centering system for illustrating its operation. In this example, the widest first portion (100a) of the settling chamber 100 has a square cross-section with sides measuring 2 mm, and the narrowest second portion (100b) of the settling chamber 100 has a square cross-section with sides measuring 1 mm. The two portions are connected by a gradually narrowing middle portion (100c), which in this case is at a 45° angle with respect to the longitudinal direction of the settling chamber 100. The measurements relating to the square cross-section of the settling chamber 100 in this example are exemplary. Therefore, the relationship between the cross-sections of the two portions of the settling chamber 100 and the slope of the middle portion is not limited to those derived from these measurements. The dimensions in this example are exemplary, and the specific values may be changed as desired.
[0093] In a particular method of using the centering device, the fluid system is controlled in a pulsed manner. In one embodiment, the particle 420 is in the position (420t1) shown in FIG. 7B at time t1. When the pump system 200 is activated, the particle 420 is transported by the force of the fluid flow according to its shape until it is positioned in the position (420t2) shown in FIG. 7B at time t2. When the flow is then interrupted, the balanced action of gravity and hydrostatic pressure allows the particle 420 to begin to fall. The particle 420 then reaches a position (420t3) that is more centralized relative to the settling chamber 100 at time t3. This process may be repeated with further actuation of the pump system 200 until the particle 420 is centered in the central position.
[0094] In a further use of the centering system, shown in Figure 7C, the particle 420 is held at the constriction 100c by a specially tuned flow that balances gravity in the settling chamber 100. This causes the lateral component of the flow generated by the perturbation of the channel geometry to act as a lateral thrust, displacing the particle 420 from a lateral position (420ta) at time ta to a central position (420tb) at time tb.
[0095] For both of the illustrated solutions, the pump system 200 can be operated manually or automatically.
[0096] In one embodiment of the present invention, the detection device 300 comprises an optical device with a microscope system mounted on a movable support. The resolution of the optical device is designed to acquire images of all particles 420 of interest at a level of detail sufficient to process their size and shape. The movable support is guided by the processor 500 to follow the motion of the particles 420 in the settling chamber 100, so that the observed drop length can be long enough to measure a sufficient number of points to obtain a reliable determination of the terminal velocity of the particles 420. Similarly, in other embodiments, the movable support is configured to move the settling chamber 100 so that the particles 420 remain within the operating range of the detection device 300.
[0097] In another embodiment, the detection device 300 comprises an optical system capable of supporting various magnifications. For example, this can be achieved by a mechanically driven optical axis. The processor 500 can select an appropriate magnification for the particular particle 420 under examination and an appropriate balance between the resolution for measuring the geometric properties of the particle 420 and the size of the field of view. The latter must be large enough to estimate the terminal velocity of the particle 420.
[0098] In another embodiment, it is possible to select an appropriate magnification for measuring a particular particle 420 without the aid of moving parts. In this embodiment, the sedimentation chamber 100 comprises multiple channels, and the detection device 300 monitors each of the different channels at different magnifications. Prior to measurement, the detection device 300 recognizes the particle 420, and the processor 500 controls its introduction into the appropriate channel. The channel structure can be implemented in different configurations to accommodate the diversity of particles 420. In practice, the size, cross-sectional area, and shape can be varied, particularly the length of the channel. Thus, relatively large particles 420 are introduced into relatively long channels and observed at a relatively low resolution to ensure a relatively large field of view. Conversely, relatively small particles 420 are introduced into relatively short channels and observed at a relatively high resolution to ensure a relatively small field of view.
[0099] In a variation of this embodiment, the mechanism for introducing particles 420 into sedimentation chamber 100 is a fluid multiplexer. In a further variation of this embodiment, sedimentation chamber 100 has multiple flow paths (e.g., 110a, 110b, 110c) connected to independent flow rate control mechanisms (e.g., on-off valves 271a, 271b, 271c) (see FIG. 8). All of the flow paths are connected in parallel in the fluidic device. In this case, detection device 300 recognizes particles 420 in optically accessible flow paths 150 before they reach the branch and selects the flow path into which particles 420 are introduced by controlling the operation of the valve. In another variation of this embodiment, an operator manually selects the flow path to be used for measurement by operating a flow path switching valve located in inlet flow path 210.
[0100] Other methods for measuring the movement of particularly large particles 420 include other positioning methods that allow the detection device 300 to recognize the passage of the particles 420 at different target locations in the settling chamber 100. The spacing of the target locations and the overall distance covered by the positioning system can be adjusted to accurately estimate the terminal velocity of the particles 420. The terminal velocity of the particles 420 is determined by dividing the distance traveled by the elapsed time.
[0101] In a technical embodiment of the fluidic device and related method, the detection device 300 includes multiple image recognition systems dedicated to each target location in the settling chamber 100. In addition to contributing to the measurement of terminal velocity, the latter also collect information about the shape and size of the particles 420. In another technical embodiment, the detection device 300 includes a series of sensors (e.g., 315a, 315b, and 315c in FIG. 9) located at target locations in the settling chamber 100 (e.g., 115a, 115b, and 115c in FIG. 9) and an independent image recognition system 320 for collecting shape and size information about the particles 420.
[0102] A further method to be able to measure the movement of particularly large bodies 420 consists of acting on the mass density and viscosity of the analysis medium. For example, in one embodiment of the present invention, the system determines a specific mass density depending on the type of bodies 420 to be analyzed, in particular the average mass density of the population of bodies 420 (for example, 1035 fg / μm for SW620 spheroids). 3 ) in the analysis medium 450. Therefore, the total force acting on the particles 420, i.e., the combined force of gravity and hydrostatic pressure, will be either downward or upward depending on the mass density of the particles 420. Therefore, during a measurement process in the absence of flow, particles 420 with higher density in the analysis medium 450 will tend to move downward, and vice versa for particles 420 with lower density.
[0103] In this embodiment, the processor 500 and associated processing algorithms are adapted to calculate descending or ascending terminal velocities. Additionally, the flow generating system 230 can generate both flow with and against the gravity vector within the sedimentation chamber 100. This allows the sample to move in opposite directions relative to its terminal velocity, thus enabling repeatable measurements. Similarly, in other embodiments of the present invention, the system is adapted to accommodate a highly viscous analysis medium 450, thereby reducing the terminal velocity of the bodies 420.
[0104] In another embodiment of the invention, the fluidic device is configured to change one or more analysis media 450 having different mass densities. In this embodiment, the fluidic device configuration is the same as that shown in FIG. 2, and the pumping system 200 is configured to select a new analysis medium 450 to be introduced into the system. In this case, the detection device 300 measures the terminal velocity of the particles 420 and activates the pumping system 200 to adjust the analysis medium 450 so that the terminal velocity of the particles 420 decreases. This protocol can be repeated until the terminal velocity of the particles 420 decreases to an easily detectable and measurable level.
[0105] In accordance with some embodiments of the present invention and examples thereof, methods and related tools for performing complex measurements of mass density, weight, size, and / or shape of a collection of multiple spherical bodies 420 have been described. However, many biological samples used in the biomedical field, including the aforementioned samples, may exhibit some deviation from sphericity. In particular, for spheroids and organoids, sphericity primarily depends on local variations in composition and / or cellular activity during the formation and maturation of the aggregates themselves. Individual cells may deviate slightly from their spherical shape due to, for example, the internal structure of the cytoskeleton, uneven external pressure of the extracellular matrix, or the presence of rigid cellular structures. Therefore, the following describes a variation of the present invention that takes into account cases in which the three-dimensional shape of the bodies 420 deviates from a spherical shape.
[0106] Unlike when the particle 420 is spherical, where many detection methods and algorithms are available to calculate the friction coefficient with respect to its radius, when the particle 420 is non-spherical, it is more complicated and requires a generalization of the theory described above.
[0107] Specifically, the relations (1) and (2) are generalized as the following relations (1b) and (2b).
[0108] v T =(ρ p -ρ l )V p g / k ‥(1b).
[0109] ρ p =(v T k / V p g)+ρ l ...(2b).
[0110] In this form, the friction coefficient k and the volume V pBoth k and k depend on the shape and orientation of the particle 420. There is a wealth of literature on theories that refine the geometric characteristics of an object to approximate the coefficient of friction k. These characteristics include ellipticity or the ratio of the surface area of a sphere with the same volume as the particle 420 to the actual surface area of the particle 420. In theory, the coefficient of friction k can be calculated by computational fluid dynamics simulations if the complete three-dimensional shape of the particle 420 is known.
[0111] Thus, the term "radius" as used in the context of embodiments of the present invention refers to the geometric radius when the body 420 is spherical. However, the term radius should also be understood as the "effective radius" and may be used to refer to a one-dimensional geometric characteristic that describes a substantially spherical or non-spherical body 420. For example, the term radius may be understood as the average distance from the center of gravity to a point on the surface, or as twice the ratio of the two-dimensional area to the perimeter, or as the Ferret radius (perimeter divided by 2π).
[0112] Thus, as previously mentioned, the terms "shape" and "size" as used in the context of embodiments of the present invention are intended to be any geometric description of the body 420 used to describe or approximate its two-dimensional or three-dimensional geometric shape, such as a measure of radius if the body 420 is spherical, or a measure of other geometric characteristics if the body 420 is approximately spherical or non-spherical.
[0113] Further, accordingly, the term "mass density" or simply "density" as used in the context of embodiments of the present invention is understood as the ratio of mass to volume when the bodies 420 are spherical. However, the term may also be used to mean "effective mass density," which, in addition to the definition of density above, is a concept that includes variables that depend on shape factors such as ellipticity and surface roughness when the bodies 420 are approximately spherical or non-spherical.
[0114] Similarly, the term "weight" as used in the context of embodiments of the present invention is understood as gravitational mass when the body 420 is spherical. Alternatively, it is intended as "effective weight" when the body 420 is non-spherical or approximately spherical. Similar to the explanation given for the term "mass density," the term "effective weight" is a concept that includes variables that depend on shape factors such as ovality and surface roughness.
[0115] As already explained in different embodiments of the present invention, performing different measurements on the same particles 420 allows for increased reliability of the results. If the particles 420 are spherical, the resulting statistical distribution is solely related to the measurement uncertainty. Conversely, if the particles 420 are roughly spherical or non-spherical, the experimental distribution of terminal velocity measurements is used to describe the size and shape of the particles 420. In a variant of this embodiment, the standard deviation of the terminal velocities is used as a parameter to determine the ellipticity of the particles 420. This information is relevant, for example, for the generation and selection of uniform spheroids to be used as models for drug development. In different variants of this embodiment, the asymmetry of the distribution of data obtained from the measurements is related to geometric symmetry, the kurtosis index is related to shape heterogeneity, and multimodality is related to the two-dimensional projection distribution of the particles 420.
[0116] In a further example embodiment of the present invention, the images of the corpuscles 420 are processed to obtain a three-dimensional reconstruction thereof, for example by using a tomography algorithm, which is then processed by a computational tool for the calculation of the coefficient of friction, thereby improving the determination of the absolute value of the mass density of the quasi-spherical or non-spherical corpuscles 420.
[0117] In particular, different technical embodiments can be employed to obtain a reconstruction of the three-dimensional shape of the body 420 or to improve its morphological characterization.
[0118] In a particular example of an embodiment of the present invention, the detection device 300 comprises a dual camera system (see FIG. 10). The mutually perpendicular orientation of the cameras with respect to the sedimentation chamber 100 ensures that images of the body 420 are acquired from two different angles. The images are processed by the processor 500 to obtain a three-dimensional model.
[0119] Conversely, when a single image acquisition system is used, different optical, fluidic, or mechanical methods may be employed. For example, in another example embodiment of the present invention, the fluidic device has two optical mirrors 113 and 114 positioned near the rear wall of the sedimentation chamber 100 and tilted at a predetermined angle relative to the detection device 300 (see FIG. 11). The front camera maintains a focal plane that includes the reflected images of the particles 430 and 440 obtained from the mirrors 113 and 114, respectively. This example allows images from different spatial perspectives of the particle 420 to be collected simultaneously and used for its three-dimensional reconstruction.
[0120] In another example embodiment of the present invention, the fluidic device is configured to acquire multiple images of the body 420. In this example, the detection device 300 comprises at least one camera whose focal plane is adjusted so that the body 420 can be scanned by acquiring multiple images. The collected images are processed by the processor 500 through the application of image filters, such as deconvolution, to perform a three-dimensional reconstruction of the body 420. Further embodiments of the three-dimensional reconstruction of the body 420 may be implemented, such as other image stacking techniques, holographic microscopy, or light sheet microscopy.
[0121] In a further embodiment of the present invention, as shown in FIG. 12 , the detection device 300 comprises an image acquisition system that orbits the sedimentation chamber 100. In a specific implementation of this embodiment, the sedimentation chamber 100 is cylindrical. This allows for the acquisition of images from different angles of the body 420, which are then processed through tomographic reconstruction for 3D reconstruction. In this implementation, fiducial marks are used near the sedimentation chamber 100 to reduce uncertainty in the measurement of the body 420's position, determined by the rotation of the detection device 300. The same method is used to minimize uncertainty introduced in any other implementation involving moving parts in the detection device 300. In a variation of this embodiment, the rotating detection device 300 is configured to move vertically and follow the sample's motion relative to its terminal velocity. The above embodiments and methods employ known techniques that are repositioned to obtain a 3D reconstruction of the body 420. Nevertheless, other existing solutions not disclosed herein may be combined with embodiments of the present invention.
[0122] Up to now, the method, technique and main mode of use of the present invention have been described. However, to demonstrate further advantages thereof, different examples of use of the present invention are included herein.
[0123] For example, some alternatives relate to multiplex measurements of populations of bodies 420 deployed for high-throughput analysis (increasing the amount of data generated), culturing and long-term analysis of bodies 420 relevant to applications such as drug testing, and classification of bodies 420 relevant to medical applications or standardization of biological models.
[0124] In biological sciences, high-throughput analysis from the study of large numbers of single cells or populations is crucial. For example, information such as the heterogeneity of the population under investigation can provide insight into the specific behavior of subsets present in a biological sample. In fact, such behavior often tends to vary significantly from the mean value of the entire population, making it an important discriminant. Currently, there are no commercially available instruments to measure the mass density, weight, size, and shape of each individual in a population.
[0125] The present invention provides a solution to this drawback in the prior art and generally enables the estimation (by extrapolation) of data necessary for statistical analysis of a collection of particles 420 through the implementation of a fluidic device. Here, particle data received by a processor 500 from a detection system 300 relates to a large number of particles 420 and includes at least one of the velocity, shape, position, and size of the particles 420. In a specific embodiment, the same method as described in FIG. 2 is employed, with the detection system 300 configured as a microscope system and connected to the processor 500. In this embodiment, the mass density, weight, size, and shape of each particle 420 constituting the collection can be measured simultaneously. Similar to the main method of use described above, particles 420 contained in an analysis medium 450 are collected by a tank 400 and introduced through the inlet channel 210 of a pump system 200. The flow generating device 230 is then activated to guide the particles 420 into a sedimentation chamber 100, after which the flow is stopped and analysis is performed while the particles 420 fall due to gravity. In this particular mode of use, the detection device 300 is configured to simultaneously monitor each of the particles 420 present within the sedimentation chamber 100 during a measurement. The terminal velocity and size of each member of the collection are calculated by indexing each particle 420 monitored within the sedimentation chamber 100. This allows estimation of the distribution of the collection's mass density, weight, size, shape, etc. after multiple repeated measurements while maintaining information about each particle 420.
[0126] In other embodiments, a larger amount of data can be obtained by the specific geometry of the sedimentation chamber 100. In the illustrated device, the sedimentation chamber 100 or the channels 110 that comprise it are linear and not curved; however, the sedimentation chamber 100 may alternatively have a curved geometry. In such an embodiment, the sedimentation chamber 100 may have a single channel with a serpentine structure, for example, so that several vertical sections along which the analysis is performed can be monitored by the detection device 300. The high throughput applied to embodiments of the present invention makes it possible to extrapolate important data, such as the statistical distribution of the population of corpuscles 420 being analyzed. For example, a normal (or Gaussian) distribution provides information about the homogeneity of the population. Therefore, analyzing the standard deviation of such a distribution is relevant to defining the quality of a sample. This is important, for example, in the case of a cell database, where the quality of the available samples can be assured. Conversely, a bimodal or multimodal distribution (a distribution with multiple peaks) can identify the presence of different subpopulations or classifications. For example, it can provide information about the various cell lines present in a heterogeneous population, or in the case of a homogeneous population, distinguish between cells at different stages of their life cycle. Furthermore, in the case of a homogeneous population also undergoing pharmaceutical treatment, the difference in statistical distribution from normal to bimodal or multimodal can distinguish, for example, drug penetration and / or efficacy.
[0127] Another aspect of the present invention is directed to avoiding waste of analysis medium 450 by providing a device that can keep bodies 420 suspended in sedimentation chamber 100 through a closed-loop fluid system. This is particularly important in applications where expensive analysis medium 450 is used, such as the prolonged pre-market drug characterization phase.
[0128] Further embodiments of the present invention relate to the cultivation and simultaneous analysis of single cells or cell aggregates over time, which are of great interest in the biomedical and clinical fields, for example, monitoring changes in the physical properties of samples during drug treatment has applications in pharmaceutical science, personalized medicine, oncology, and artificial insemination.
[0129] This embodiment comprises an apparatus and respective method for measuring the mass density, weight, size, and / or shape of a body 420 for a desired period of time, up to several weeks. Furthermore, the method is non-destructive, and the specific body 420 selected for analysis is conveniently retrieved after analysis for further investigation.
[0130] In the fluidic device shown in FIGS. 2 and 3, pump system 200 is linear; however, pump system 200 may include one or more liquid recirculation systems and one or more flow generating systems for circulating liquid through pump system 200 and settling chamber 100. In the embodiment shown in FIG. 13, pump system 200 includes an additional recirculation flow path 250 and a secondary pump system, referred to herein as recirculation device 240 (see FIG. 13). The protocol for introducing particles 420 into the fluidic device is similar to that described above. Particles 420 contained in analysis medium 450 are drawn from tank 400 and introduced into pump device 200 via inlet flow path 210. Flow generating system 230 is activated to introduce particles 420 into settling chamber 100, where they are monitored by detection device 300. Pump system 200 includes recirculation flow path 250 annularly connected to settling chamber 100, and recirculation device 240 (see FIG. 13). The recirculation device 240 is activated by the processor 500 to retain the particles 420 in the sedimentation chamber 100 through the generation of an annular flow controlled based on particle data obtained from the detection system 300. The recirculation flow path 250 has the advantage of allowing the reuse of the analysis medium 450, minimizing its expenditure.
[0131] In an example embodiment of the present invention, the mass density, weight, size, and shape of the particles 420 can be measured before and after the primary analysis medium 450 is replaced with one or more different analysis media 451. In this example, the pump system 200 further includes one or more secondary flow paths in communication with the settling chamber 100 for introducing or withdrawing liquid and / or particles 420 to one or more additional tanks. The secondary flow paths may be connected directly to the settling chamber 100 or via the inlet flow path 210 or a secondary fluid circuit. In a specific example embodiment of the present invention, a modification of the fluidic device disclosed in FIG. 2 is employed. The particles 420 are introduced into the first analysis medium 450 in the settling chamber 100 via the pump device 200 and maintained suspended therein. In this example, the pump system 200 includes a secondary buffer exchange flow path 260 connected to a second tank 401 containing new second analysis medium 451 (see FIG. 14). According to the system, new analysis medium 451 can be introduced into the sedimentation chamber 100 via the secondary flow path 260. During the exchange of the main analysis liquid 450, the particles 420 are retained inside the sedimentation chamber 100. By repeating this procedure several times, the analysis medium 450, 451 is completely exchanged in both the sedimentation chamber 100 and the recirculation flow path 250. In a particular variation of this embodiment, a switching valve 270 is provided at the junction between the secondary buffer exchange flow path 260 and the inlet flow path 210. In another variation of this embodiment, the system is configured such that the second analysis medium 451 is introduced through the same inlet flow path 210 through which the particles 420 are introduced, by manually or automatically switching from a second tank 401 containing new second analysis medium 451 to the first tank 400. In a further variation of this embodiment, the pump system 200 includes a secondary buffer exchange flow path 260 (see FIG. 14), a recirculation flow path 250, and a recirculation system 240 (see FIG. 13). In this variation, measurements of the mass density, weight, size and / or shape of the bodies 420 can be performed over a period of days or even weeks, while the liquid in which the bodies 420 are held and analyzed can be replaced.This combination of embodiments is advantageous for different applications. For example, the bodies 420 can be handled over long periods of time while the analysis medium 450 is frequently changed. This allows for the introduction of a second liquid with different characteristics from the first, such as a drug concentration for drug toxicity analysis, during each change. Conversely, a more intensive treatment can be introduced, with a second analysis medium having significantly different characteristics from the first, and the body 420's response to such changes monitored. In one embodiment of the present invention, the same body 420 is analyzed after experiencing multiple analysis media 450 with different ionic strengths. This embodiment allows for the measurement of the effect of ionic strength on the body 420. In some applications, the use of the correct analysis medium 450 is an important aspect for implementing this embodiment. If the body 420 has a semipermeable membrane (e.g., if it is a single cell or a spheroid), an isotonic analysis medium (e.g., 0.9% w / v cell-grade PBS) can be used to measure the mass density of the native body 420. In a different embodiment of the invention, the analysis medium 450 is not isotonic with the corpuscles 420 and the effect of ionic strength on the corpuscles 420 can be measured.
[0132] In different embodiments of the present invention, the analytical medium 450 used to process the bodies 420 may contain drugs or other biologically active compounds that can affect their size, volume, mass density, and / or weight. In this case, the system measures the effects of the compounds on cells, spheroids, or organoids. Potential results of monitoring bulk density and biological sample size are shown in the graph in Figure 15. Here, the bodies 420 are considered spherical, and their size is plotted as diameter. This example aims to identify the spheroid's maturation stage and the time required for its interaction with a drug. The graph shows that both the diameter and mass density of the bodies 420 increase until time T1 is reached. After that, the density continues to increase, while the diameter stabilizes. This indicates a compaction stage until time T2, when the density reaches a plateau or plateau, indicating the spheroid is in an ideal maturation state for modifying the analytical medium 450. Time T3 is the time of drug introduction, and the subsequent trend indicates the drug's effect. Thus, by observing and comparing the changes in density and diameter over time, valuable information regarding drug interactions can be gleaned.
[0133] A variant of this embodiment relates to the combination of culturing and long-term analysis of the corpuscles 420, providing a solution for modifying the analysis medium 450. Indeed, a further important aspect of scientific research concerns the possibility of monitoring a sample during changes in its surrounding environment, such as changes in pH, ionic strength, growth factors in the culture medium or during specific treatments with pharmacological agents and / or chemicals.
[0134] A further use of embodiments of the present invention allows for the sorting of bodies 420, i.e., the organization and selection of subsets of bodies 420. This use is important in the biomedical field because it allows for the collection of subsets of bodies 420 based on specific properties or geometric characteristics. Cell sorting is commonly practiced throughout the medical, pharmaceutical, and scientific research fields, such as regenerative medicine and personalized medicine, as well as anti-cancer drug therapy and virology. Current cell sorting methods select samples based on factors such as the presence or absence of protein markers or specific biochemical interactions. However, no technology currently exists that allows for the selection of a wide range of samples based on mass density, weight, size, and shape. Accordingly, another embodiment of the present invention relates to a method and related apparatus for the selective sorting of bodies 420 based on the simultaneous measurement of these properties.
[0135] In this particular embodiment, the settling chamber 100 has a branch connected to the recovery channel 120, which in turn is connected to a specific point in the pumping system 200, referred to herein as the secondary flow channel 280 for sorting (see FIG. 16). Both the inlet flow channel 210 and the secondary flow channel 280 are controlled by flow control mechanisms, such as valves 270 and 290. In this embodiment, small bodies 420 are introduced into the settling chamber 100 through the inlet flow channel 210 with valve 290 closed and valve 270 open. As described in the previous embodiment, after measurement of the small bodies 420 is completed, the results are evaluated to sort the sample based on mass density, weight, size, and shape. Then, with valve 270 closed and valve 290 open, the pumping system 200 is activated to collect the sorted small bodies 420 through the recovery channel 120 and the secondary flow channel 280, ultimately reaching the tank 700 (see FIG. 16).
[0136] In a variation of this embodiment, the bodies 420 are selected and sorted solely based on mass density. This is relevant for reducing heterogeneity in scientific studies, for example, allowing for the selection and collection of a subset of spheroids with similar compactness. In another variation of this embodiment, several measurement parameters may be combined for the selection of the collected bodies 420. For example, features such as the standard deviation of the measured diameter and terminal velocity may be used to sort the bodies 420 according to their degree of sphericity. This particular application is relevant for testing the diffusion of drugs in different homogeneous batches of spheroids, which may provide information on the time it takes for the drug to reach the nucleus. The same application may provide information on the concentration of a drug required to efficiently cross multiple cell layers, enabling studies on its toxicity to be performed.
[0137] In further variations of this embodiment, the parameters and limits used for sorting can be, for example, defined by a user, extracted from a database, or automatically defined by an unsupervised algorithm that sorts similar families of bodies 420 in the population.
[0138] A further aspect of the present invention relates to the importance of transitioning from manual to automated systems, particularly when moving from laboratory use to large-scale medical and industrial applications. The present invention allows for easy automation using existing equipment due to the small number of hardware components, which can be easily miniaturized using existing technology.
Claims
1. 1. A fluidic device for measuring at least one of mass density and weight of a small body, comprising: a settling chamber fluidly connected to an inlet channel configured to be immersed in a liquid; a pump system connected to the settling chamber and adapted to control the flow of liquid in the settling chamber; a processor configured to acquire particulate data associated with particulates in at least one region of the settling chamber and calculate at least one of a mass density and a weight of the particulates based on the received particulate data; The settling chamber has a flow passage with a variable internal cross-sectional area to enable the pumping system to induce a flow having a non-zero horizontal component in the settling chamber. Fluid equipment.
2. 10. The fluidic device of claim 1, and at least one detection device configured to acquire the particle data and provide the particle data to the processor. Fluid equipment.
3. 3. The fluidic device according to claim 1, The processor is configured to control the pump system based at least in part on the received corpuscle data. Fluid equipment.
4. The fluidic device according to any one of claims 1 to 3, The body data includes at least one of sedimentation rate, shape, location, and size. Fluid equipment.
5. The fluidic device according to any one of claims 1 to 4, a temperature controller configured to provide a temperature measurement of the liquid in the settling chamber to the processor; The processor is configured to calculate at least one of a mass density and a weight of the body based on the temperature measurements. Fluid equipment.
6. 6. The fluidic device according to claim 5, the temperature controller is configured to control the temperature of the liquid in the settling chamber based on at least one of information provided by the processor and a predetermined temperature value. Fluid equipment.
7. 3. The fluidic device according to claim 2, further comprising a movable support adapted to house at least a portion of the at least one detection device; the processor is configured to guide the movable support based at least in part on the received body data. Fluid equipment.
8. The fluidic device according to any one of claims 1 to 7, the settling chamber having a plurality of fluid passages connected in parallel to one another and connected to the inlet passage, each fluid passage being connected to a flow control mechanism; The processor is configured to receive input data related to the particles in the inlet flow path and to control the flow regulation mechanism based on the input data. Fluid equipment.
9. The fluidic device according to any one of claims 1 to 8, the pump system has a recirculation flow path connected in parallel to the settling chamber; the recirculation flow path comprises a recirculation device; the processor is configured to control the recirculation device for recirculation of liquid in the settling chamber. Fluid equipment.
10. 1. A method for measuring at least one of mass density and weight of a small body, comprising: introducing the particles to be analyzed into a sedimentation chamber of the fluidic device through an inlet channel immersed in a liquid; controlling the flow of liquid in the settling chamber by a pump system connected to the settling chamber; the settling chamber having a flow passage with a variable internal cross-sectional area, wherein the pumping system induces a flow having a non-zero horizontal component; acquiring particle data relating to particles moving through quiescent liquid in at least one region of the settling chamber; and calculating at least one of a mass density and a weight of the body based on the received data. method.
11. 11. The method of claim 10, selecting the particles based on one of mass density, weight, size and shape; collecting the selected bodies in a predetermined container based on at least one of mass density, weight, size, and shape. method.
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