Systems and methods for detection - Patents.com
The system addresses the lack of parallel acquisition and temporal resolution in existing cell array analysis by using an illumination and detection assembly to collect and transfer signals from multiple wells simultaneously, achieving high-speed, single-cell resolution.
Patent Information
- Application Number
- JP2022148901
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-01-10
- Filing Date
- 2022-09-20
- Publication Date
- 2025-10-01
- Estimated Expiration
- 2038-01-10
AI Technical Summary
Existing systems for analyzing cell arrays lack both parallel acquisition and temporal resolution, failing to provide single-cell resolution while measuring multiple wells simultaneously.
A system with an illumination assembly and detection assembly that directs light to multiple wells, collects signals in parallel, and transfers them to detectors, achieving a sampling rate greater than 100 Hz, with simultaneous signal collection and transfer across multiple wells.
Enables simultaneous, high-speed signal collection and detection from multiple wells, providing single-cell resolution and temporal resolution, allowing for rapid detection of cellular responses.
Smart Images

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Abstract
Description
[Technical Field]
[0001]
[0001] This application claims priority to U.S. Provisional Patent Application No. 62 / 444,564, filed January 10, 2017, the entire contents of which are incorporated herein by reference. [Background technology]
[0002]
[0002] Systems for analyzing cell arrays are useful in medical research, life sciences, and other applications. Existing systems for measuring cellular output typically include an array of wells, such as a microplate, into which cells are added to each well. Individual wells in the system are measured sequentially using a microscope and a detector configuration, such as a CCD camera. These systems typically provide single-cell resolution but lack parallel acquisition from multiple wells. Other systems are designed to acquire cellular output from multiple wells of an array in parallel. However, these systems typically lack temporal resolution. Summary of the Invention [Problem to be solved by the invention]
[0003] [Means for solving the problem]
[0004] One aspect of the present disclosure provides a system. In some embodiments, the system may include an illumination assembly configured to direct light from an excitation source to a plurality of wells of an array of wells, and a detection assembly. In some embodiments, each well of the plurality of wells may be configured to receive a cell. In some embodiments, at least a portion of the light may illuminate at least a portion of each well of the plurality of wells to form an at least partially illuminated well. In some embodiments, the detection assembly may be configured to (i) collect a signal from each at least partially illuminated well of the plurality of wells and (ii) transfer each signal to a corresponding detector. In some embodiments, the collection of each signal of the plurality of signals may occur substantially in parallel. In some embodiments, a lens may be configured to focus at least a portion of the signal onto a corresponding detector. In some embodiments, the transfer of each signal may occur substantially in parallel. In some embodiments, at least a portion of the signal from each well of the plurality of wells may be transferred to an independent detector. In some embodiments, a sampling rate of signals across the plurality of wells may be greater than about 100 Hertz (Hz).
[0005] In some embodiments, collection of signals from each well of the plurality of wells may occur simultaneously. In some embodiments, collection of two or more signals from each well of the plurality of wells may occur substantially in parallel. In some embodiments, the plurality of wells may be greater than five wells. In some embodiments, collection of two or more signals from each well of the plurality of wells may occur within a time frame of less than about 20 seconds. In some embodiments, the system may be configured to provide transmitted light to each well of the plurality of wells. In some embodiments, the detection assembly may be configured to collect signals from each well of the plurality of wells along an axis that may be substantially parallel to the incident path of the transmitted light to provide a system having a transmission geometry.
[0006] In some embodiments, the detector may be an optical detector. In some embodiments, the signal may be an optical signal. In some embodiments, the signal is detected by the detector. and converted into a current signal. In some embodiments, the sampling rate may be about 8,000 Hz to about 12,000 Hz. In some embodiments, the sampling rate may be about 10,000 Hz. In some embodiments, the detection assembly may include signal collection optics. In some embodiments, the numerical aperture of the signal collection optics may be about 0.2 to about 0.8. In some embodiments, the numerical aperture of the signal collection optics may be about 0.5.
[0007] In some embodiments, at least one well of the plurality of wells can be fully illuminated. In some embodiments, the ratio of the area of the well from which a signal may be collected to the area of the signal that may be transferred to the detector can be about 1:0.5 to about 1:1.5. In some embodiments, the ratio can be about 1:1. In some embodiments, the area that may be illuminated can include cells. In some embodiments, the area that may be illuminated can include the bottom of the well.
[0008] In some embodiments, the illumination assembly may include excitation optics. In some embodiments, a focal length of the excitation optics for each of the plurality of wells may be longer than a focal length of signal collection optics for collecting signals from a corresponding well of the plurality of wells. In some embodiments, a change in light intensity of the excitation source may have a response delay of less than about 1 millisecond.
[0009] In some embodiments, the illumination assembly may include two or more excitation sources. In some embodiments, the two or more excitation sources may be different. In some embodiments, the two or more excitation sources may be the same. In some embodiments, the excitation source provides approximately 5 milliwatts per square millimeter (mW / mm 2In some embodiments, the excitation source can provide a light intensity of greater than about 5 mW / mm to one or more wells of the plurality of wells. 2 In some embodiments, the light may provide a light intensity of greater than about 10 -7 from about 10 -5 In some embodiments, the light may comprise a wavelength of about 400 to about 800 nanometers (nm). In some embodiments, the detection assembly may collect a signal from each well of the plurality of wells at a wavelength of about 400 nm to about 1000 nm.
[0010] In some embodiments, a signal from each well of the plurality of wells may be transferred to a corresponding detector. In some embodiments, the corresponding detector may include a photodiode. In some embodiments, the photodiode may include a pin (PIN) photodiode, a pn (PN) photodiode, an avalanche photodiode, a Schottky photodiode, or any combination thereof. In some embodiments, the photodiode may detect fluorescence, phosphorescence, luminescence, or any combination thereof. In some embodiments, the corresponding detector may detect about 10 -7 from about 10 -5 In some embodiments, the detection assembly may be configured to detect light having wavelengths of 1000 sq. m. In some embodiments, the detection assembly may include a plurality of corresponding detectors. In some embodiments, each corresponding detector of the plurality of corresponding detectors may correspond to a different well of the plurality of wells. In some embodiments, each corresponding detector of the plurality of corresponding detectors may correspond to a unique well of the plurality of wells.
[0011] In some embodiments, the plurality of wells may be an array of wells, hi some embodiments, the plurality of wells may comprise at least about 16 wells, 32 wells, 96 wells, or 384 wells.
[0012] In some embodiments, the system may include a filter. In some embodiments, the filter may include an emission filter. In some embodiments, the system may include a plurality of lenses and a plurality of detectors. In some embodiments, each detector of the plurality of detectors may be operably connected to one lens of the plurality of lenses. In some embodiments, the lens may include a focusing lens. In some embodiments, the lens may include a single collimation lens. In some embodiments, the detection assembly may include an amplifier. In some embodiments, the amplifier may include an on-board transimpedance amplifier.
[0013] In some embodiments, each well of the plurality of wells may contain a plurality of cells. In some embodiments, at least some of the plurality of wells may include an optically detectable sensor. In some embodiments, the system is capable of detecting the presence or absence of activation of the optically detectable sensor in each well of the plurality of wells within a time period ranging from about 1 millisecond to about 1 minute. In some embodiments, the system is capable of measuring a change in the intensity of the signal from the optically detectable sensor in each well of the plurality of wells in less than about 1 millisecond and with a signal-to-noise ratio exceeding about a 5 / 10 mV cell membrane potential change.
[0014] In some embodiments, the light may comprise a timed pulse of light. In some embodiments, the timed pulse of light may be less than about 100 milliseconds in duration. In some embodiments, the system may comprise a timed pulse of light. In some embodiments, the timed pulse of light may comprise one or more wavelengths.
[0015] In some embodiments, a change in intensity of the signal from the optically detectable sensor identifies at least one cell of the plurality of cells as a Chop1 protein, a Chop2 protein, an expression tag having at least about 52% sequence homology to Chop1 or Chop2 protein, about 52% sequence length, or a combination thereof. contacting the expressed protein, LiGluR, or any combination thereof In some embodiments, a change in the intensity of a signal from a light-detectable sensor may result from (i) light-mediated ligand activation of an ion channel or G-protein, (ii) light-induced induction of a caged ligand or enzymatic substrate. or (iii) any combination thereof. In some embodiments, the enzyme substrate or salt thereof may be glutamate, calcium, a nucleotide-phosphate, any salt thereof, or any combination thereof.
[0016] In some embodiments, the optically detectable sensor is a sensor for detecting changes in (i) cell membrane potential, (ii) intracellular ion concentration, (iii) protein conformation, or (iv) any combination thereof. In some embodiments, the sensor can detect changes in intracellular ion concentrations. ... -2 (Quin-2), any salt thereof, or any combination thereof. In some embodiments, the sensor may detect changes in cell membrane potential ... The sensor may include RH414 (CAS No. 83668-91-1), RH414 (CAS No. 161433-30-3), RH421 (CAS No. 107610-19-5), RH795 (CAS No. 172807-13-5), a salt of any of these, or any combination thereof. In some embodiments, the sensor is capable of detecting changes in ion concentration within a cell. In some embodiments, the ions may be calcium ions, sodium ions, potassium ions, hydrogen ions, chloride ions, or any combination thereof.
[0017] In some embodiments, the plurality of wells contains a plurality of cells and media. In some embodiments, at least a portion of the medium may include an optically detectable sensor. In some embodiments, the system is capable of detecting the presence or absence of activation of the optically detectable sensor in each well of the plurality of wells within a time period ranging from about 1 millisecond to about 1 minute. In some embodiments, the optically detectable sensor may include a sensor for detecting changes in (i) cell membrane potential, (ii) extracellular ion concentration, (iii) protein structure, or (iv) any combination thereof.
[0018] In some embodiments, the plurality of cells may comprise spontaneously electrically active cells, optically paced excitable cells, or a combination thereof. In some embodiments, the plurality of cells may comprise spontaneously electrically active cells. In some embodiments, the spontaneously electrically active cells may comprise cardiomyocytes, cortical neurons, dorsal root ganglion neurons, or any combination thereof. In some embodiments, the plurality of cells may comprise optically paced excitable cells. In some embodiments, the optically paced excitable cells may comprise ventricular muscle cells, skeletal muscle cells, or a combination thereof.
[0019] In some embodiments, the plurality of cells in each well of the plurality of wells may be from about 2 cells to about 50 cells. In some embodiments, the plurality of cells in each well of the plurality of wells may be less than about 500 cells, less than 400 cells, less than 300 cells, less than 200 cells, less than 100 cells, less than 50 cells, or less. In some embodiments, the plurality of cells in each well of the plurality of wells may be at least about 1,000 cells.
[0020] Another aspect of the present disclosure provides kits. In some embodiments, the kit may include a system and instructions for use. In some embodiments, the kit may include an optically detectable sensor. In some embodiments, the kit may include a container. In some embodiments, the container may include an optically detectable sensor. In some embodiments, the kit may include a database. In some embodiments, the instructions may include instructions for human Ether-a-go-go-Related Gene (hERG) screening. In some embodiments, the instructions may include instructions for screening a molecule or salt thereof against intact cardiomyocytes. In some embodiments, the instructions may include instructions for cardiomyocyte safety pharmacology screening. In some embodiments, the kit may include one or more optically detectable sensors and instructions for using the optically detectable sensors with the system. In some embodiments, the kit may include intact cardiomyocytes.
[0021] Another aspect of the present disclosure provides a method of manufacturing a kit. In some embodiments, the method may include combining a system with instructions for use. Another aspect of the present disclosure provides a method of manufacturing a system. In some embodiments, the method may include forming an illumination assembly and a detection assembly. Another aspect of the present disclosure provides a method of hERG screening. In some embodiments, the method may include combining a system with instructions for use. The present disclosure may include performing hERG screening using a system. Another aspect of the present disclosure provides a method for screening a molecule or a salt thereof against intact cardiomyocytes. In some embodiments, the method may include screening a molecule or a salt thereof against intact cardiomyocytes using the system. Another aspect of the present disclosure provides a method for detecting an optically detectable sensor in a plurality of cells. In some embodiments, the method may include detecting an optically detectable sensor in a plurality of cells using the system. Another aspect of the present disclosure provides a method for detecting an optically detectable sensor in a plurality of cells. In some embodiments, the method may include collecting signals from a plurality of wells. In some embodiments, the collection is performed substantially in parallel. In some embodiments, the sampling rate across the plurality of wells is greater than about 100 Hz.
[0022] Another aspect of the present disclosure provides a method for detecting an optically detectable sensor in a plurality of cells. In some embodiments, the method may include providing an array of wells including a plurality of wells; directing light from an excitation source onto each well of the plurality of wells to illuminate at least a portion of each well of the plurality of wells to form an at least partially illuminated well; collecting a signal from each well of the plurality of wells; and transferring the signal from each well of the plurality of wells to a corresponding detector. In some embodiments, each well of the plurality of wells may include at least one cell of the plurality of cells. In some embodiments, the collecting may occur substantially in parallel. In some embodiments, a lens may be configured to focus at least a portion of the signal from each well onto a corresponding detector. In some embodiments, at least some of the plurality of cells may include an optically detectable sensor. In some embodiments, the signal may confirm the presence or absence of activation of the optically detectable sensor. In some embodiments, the transferring may occur substantially in parallel. In some embodiments, a sampling rate across the plurality of wells may be greater than about 100 Hz.
[0023] Another aspect of the present disclosure provides a method for screening the biological activity of a molecule or a salt thereof in a plurality of cells. In some embodiments, the method may include adding the molecule or a salt thereof to at least some of a plurality of wells and detecting the presence or absence of activation of a sensor in each well of the plurality of wells. In some embodiments, the sensor may include an optically detectable sensor. In some embodiments, the plurality of cells may include cardiomyocytes. In some embodiments, each well of the plurality of wells may include at least one cell of the plurality of cells. In some embodiments, at least some of the plurality of cells may include an optically detectable sensor. In some embodiments, the detection may occur substantially in parallel. In some embodiments, the sampling rate across the plurality of wells may be greater than about 100 Hz.
[0024] Another aspect of the present disclosure provides a system. In some embodiments, the system may include an illumination assembly and a detection assembly. In some embodiments, the system may be configured to direct light to a plurality of wells in an array of wells, collect signals from each well of the plurality of wells in substantially parallel, and transfer each signal to a corresponding detector in substantially parallel. In some embodiments, a sampling rate of signals across the plurality of wells may be greater than about 100 Hertz (Hz). Another aspect of the present disclosure provides a method for screening the biological activity of a molecule or a salt thereof in a plurality of cells. In some embodiments, the method may include providing an array of wells including a plurality of wells; adding the molecule or a salt thereof to at least some of the wells; directing light from an excitation source to each well of the plurality of wells to illuminate at least some of the wells of the plurality of wells to form at least partially illuminated wells; and detecting the presence or absence of activation of a sensor in each well of the plurality of wells.
[0025] In some embodiments, each well of the plurality of wells may include one cell of the plurality of cells. In some embodiments, at least a portion of the plurality of cells may include a sensor. In some embodiments, the detection may occur substantially in parallel. In some embodiments, the sampling rate across the plurality of wells may be greater than about 100 Hz. In some embodiments, the sensor may include an optically detectable sensor. In some embodiments, the plurality of cells may include cardiomyocytes. In some embodiments, the plurality of wells may be an array of wells. In some embodiments, the array of wells may include 6 wells, 12 wells, 32 wells, 96 wells, or 384 wells.
[0026] Another aspect of the present disclosure provides a system. In some embodiments, the system may include an illumination assembly and a detection assembly. In some embodiments, the system may be configured to direct light to a plurality of wells of an array of wells, collect a signal from each well of the plurality of wells in substantially parallel, and transfer each signal to a corresponding detector in substantially parallel. In some embodiments, the system may have a sampling rate of the signal across the plurality of wells that may be greater than about 100 Hertz (Hz). In some embodiments, the collection and transfer of the signal from each well of the plurality of wells may occur simultaneously.
[0027]
[0026] Further aspects and advantages of the present disclosure will become readily apparent to those skilled in the art from the following detailed description, wherein only illustrative embodiments of the present disclosure are shown and described. As will be realized, the present disclosure is capable of other and different embodiments, and its several details are capable of modifications in various obvious respects without departing from the disclosure. Accordingly, the drawings and description are to be regarded as illustrative in nature, and not as restrictive.
[0028] Incorporation by Reference
[0027] All publications, patents, and patent applications mentioned in this specification are herein incorporated by reference to the same extent as if each individual publication, patent, or patent application was specifically and individually indicated to be incorporated by reference. To the extent that the publications and patents or patent applications incorporated by reference conflict with the disclosure contained herein, the present specification is intended to supersede and / or control over any such conflicting material.
[0029] The novel features of the invention are set forth with particularity in the appended claims. A better understanding of the features and advantages of the present invention will be obtained by reference to the following detailed description that sets forth illustrative embodiments, in which the principles of the invention are utilized, and the accompanying drawings (also referred to herein as "figures" and "figures"). [Brief explanation of the drawings]
[0030] [Figure 1] FIG. 1 shows a block diagram of an illumination assembly that directs light from an excitation source onto an array of wells where a detection assembly is configured to capture and transfer data obtained from the illuminated area. [Figure 2] FIG. 2 shows an example of a fluorescence transmission geometry. [Figure 3a]
[0031] Figure 3a shows the system configuration, Figure 3b shows the optics for a single well, and Figure 3c shows the addition of a single collimation lens. [Figure 3b] FIG. 3a shows the system configuration, FIG. 3b shows the optics for a single well, and FIG. 3c shows the addition of a single collimation lens. [Figure 3c] FIG. 3a shows the system configuration, FIG. 3b shows the optics for a single well, and FIG. 3c shows the addition of a single collimation lens. [Figure 4]
[0032] FIG. 4 illustrates a computer control system that is programmed or configured to implement the methods provided herein. [Figure 5]
[0033] Figure 5 shows the system configuration. [Figure 6]
[0034] Figures 6a-b show safety pharmacological assays on spontaneously beating cardiomyocytes. [Figure 7]
[0035] FIG. 7 shows dual wavelength stimulation and monitoring of sodium channel activity. [Figure 8]
[0036] Figure 8a-b shows simultaneous multi-layer acquisition and automated characterization of cardiomyocyte action potentials using near-infrared voltage-sensing dyes. [Figure 9]
[0037] 9a-b show dual wavelength recording and pacing of cardiomyocyte action potentials. [Figure 10]
[0038] Figures 10a-c show simultaneous multi-layer dual-wavelength stimulation and recording of sodium channel activity using near-infrared voltage-sensitive dyes. DETAILED DESCRIPTION OF THE INVENTION
[0031]
[0039] While various embodiments of the present invention are shown and described herein, it will be apparent to those skilled in the art that such embodiments are provided by way of example only. Numerous variations, changes, and substitutions may occur to those skilled in the art without departing from the invention. It is understood that various alternatives to the embodiments of the invention described herein may be employed.
[0032]
[0040] As used herein, the singular forms "a," "an," and "the" include plural references unless the context clearly dictates otherwise. Any reference to "or" herein is intended to include "and / or" unless specifically stated otherwise.
[0033]
[0041] As used herein, the term "about" means a referenced numerical indication plus or minus 15% of the referenced numerical indication.
[0042] The term "well" as used herein generally refers to a well configured to receive one or more cells. A well can be configured to receive a single cell. A well can be configured to receive multiple cells. A system may be configured to receive an array of wells, such as a microplate. An array of wells may include multiple wells. One or more wells of the multiple wells may contain a single cell type or multiple cell types. One or more wells of the multiple wells may contain different cell types. One or more wells of the multiple wells may contain different stimuli or conditions (such as different drugs or different media compositions). An array of wells may be a microplate, such as a custom-made microplate or a commercially available microplate. A system may include an array of wells. A system may be configured to receive an array of wells. Some of the wells may comprise glass, such as borosilicate glass. Some of the wells may comprise plastic, such as polypropylene, polyethylene, polyethylene terephthalate G, polymethylpentene, etc.
[0034]
[0043] As used herein, the term "cells" generally refers to cells that can be added to one or more of the multiple wells of the systems described herein. Cells may include cell lines such as human embryonic kidney 293 (HEK293 cells). Cells may also be engineered or genetically modified cells. In some cases, engineered or genetically modified cells can be modified to perform light-gated iontophoresis. channels, voltage-gated channels, ligand-gated ion channels The cells may express a cytoplasmic ion channel, a mechanosensitive ion channel, a temperature-dependent ion channel, or any combination thereof. The cells may be isolated from a subject, such as from a surgical biopsy, surgical resection, needle aspirate, blood sample, or combination thereof taken from the subject. The cells may be isolated from tissue or bodily fluids, such as sputum, saliva, blood, urine, or combinations thereof. The cells may be isolated from a subject having or suspected of having a condition, such as a cardiac condition. The cells may be stem cells, neurons, myocytes (cardiac muscle cells), or other cells. The cells may be electrically active cells, such as cardiomyocytes or neurons (such as cortical neurons or dorsal root ganglion neurons). The cells may be optically paced, excitable cells, such as cardiomyocytes (such as genetically engineered cardiomyocytes), neurons (such as cortical neurons or dorsal root ganglion neurons), ventricular myocytes, or skeletal muscle cells. In some embodiments, one or more cell types can be co-cultured together, such as electrically active cells and cells that support the electrical activity of the electrically active cells. For example, in some cases, cardiomyocytes and HEK293 cells can be co-cultured together in a single well.
[0035]
[0044] The term "light" as used herein generally refers to electromagnetic radiation provided by one or more excitation sources. The one or more excitation sources may be provided as part of the system or may be separate from the system, such as an external excitation source that may be operably coupled to the system. Light provided by the one or more excitation sources may be directed toward the plurality of wells to illuminate at least a portion of each well of the plurality of wells. The light may be provided at a specific wavelength or within a specific wavelength range. For example, the excitation source may provide light having a wavelength of about 400 nanometers (nm) to about 450 nm to one well of the plurality of wells. The excitation source may provide light having a wavelength of about 400 nm to about 1000 nm to one well of the plurality of wells. The light may be time-constant or time-varying, such as pulsed light. The light intensity of the light may be time-constant or time-varying, such as adjustable light intensity. The adjustable light intensity may be adjusted by a system controller or a user. The light provided by the excitation source may provide an excitation wavelength to excite a light-detectable sensor such that a signal may be collected from the light-detectable sensor at a detectable or emission wavelength. If the detection assembly includes a photodiode, the signal may be an optical signal that may be converted to an electrical current. The light may be visible light, infrared light, fluorescent light, luminescent light, phosphorescent light, or any combination thereof.
[0036]
[0045] As used herein, the term "at least partially illuminated well" generally refers to one well of a plurality of wells configured to receive light from an excitation source. Light can be directed from the excitation source to each well of the plurality of wells to illuminate at least a portion of each well. In some cases, the light illuminates substantially the entire surface area of the well in which the cell or cells reside. In some cases, the light illuminates a portion of the surface area of the well in which the cell or cells reside. In some cases, the light illuminates some cells of the plurality of cells in the well. In some cases, the light illuminates each cell in the well. In some cases, the light illuminates within about 0.1 mm. 2 ~about 20mm 2The light may illuminate a surface area of the well that may be approximately 0.1 mm 2 ~about 10mm 2 The light may illuminate a surface area of the well that may be approximately 0.1 mm 2 ~about 5mm 2 The light may illuminate a surface area of the well that may be approximately 0.5 mm 2 ~about 10mm 2 The light may illuminate a surface area of the well that may be approximately 0.5 mm 2 ~approx. 8mm 2 The surface area of the well may be illuminated.
[0037]
[0046] The term "signal" as used herein generally refers to a signal that may be collected by a detection assembly of a system. The signal may be a spontaneous signal. The signal may be a signal mounted in response to a specific or defined stimulus. The signal may be intermittent. The signal may be continuous. The signal may follow a stimulus or input. The detection assembly may include collection optics. The detection assembly may include a photodiode. The signal may be an optical signal. The signal may be a signal that may be converted into an electrical signal. The signal may be an optical signal that may be converted into an electrical signal by a detection assembly such as a photodiode. The signal may be an optical signal emitted by an optically detectable sensor. The signal may be a fluorescent signal, a phosphorescent signal, a luminescent signal, or any combination thereof. The signal may be a signal that indicates a change in an action potential, a refractory period following an action potential, membrane depolarization, a partial depolarization, or a partial depolarization. The biological response may be indicative of partial membrane depolarization, membrane potential or intracellular ion concentration.
[0038]
[0047] As used herein, the term "transmission geometry" generally refers to the position of a detection assembly relative to an incident light path. For example, an incident light path (such as light from an excitation source) may be positioned approximately perpendicular to a surface of a well (such as a bottom surface) of a plurality of wells. Incident light that may not be absorbed by a sample in the well (such as cells at the bottom of the well) may be "transmitted" through the sample along a path that may be approximately perpendicular to the surface of one of the wells. In some cases, the detection assembly may be positioned to collect a signal from the sample along an axis substantially parallel to the incident path of the transmitted light, such that the configuration may include a transmission geometry.
[0039]
[0048] The term "excitation source" as used herein generally refers to an excitation source capable of providing light to a system. The excitation source may be a light source. The excitation source may be a laser, a light-emitting diode (LED) lamp, a flash lamp, a mercury vapor lamp, a xenon arc lamp, a tungsten-halogen lamp, or a lamp. The system may include one excitation source or multiple excitation sources, such as two excitation sources. The two excitation sources may be the same, such as two lasers. The two excitation sources may be different, such as a laser and an LED lamp. The excitation source may provide light to at least a portion of each well of the multiple wells. The excitation source may excite or activate the optically detectable sensor such that the optically detectable sensor emits a signal that may be collected using a detection assembly of the system. The excitation source may provide an excitation wavelength to excite the optically detectable sensor, and the detection assembly may collect the signal emitted from the optically detectable sensor at an emission wavelength. For example, the excitation source can provide an excitation wavelength of about 400 to about 450 nanometers to the plurality of wells, and the detection assembly can collect signals emitted from the light-detectable sensors at an emission wavelength of about 600 to about 700 nanometers. The detection assembly can collect signals at an emission wavelength of about 400 to about 1000 nanometers. The detection assembly can collect signals at an emission wavelength of about 400 to about 800 nanometers. The detection assembly can collect signals at an emission wavelength of about 500 to about 1000 nanometers. The detection assembly can collect signals at an emission wavelength of about 600 to about 1000 nanometers.The excitation source is approximately 400, 405, 410, 415, 420, 425, 430, 435, 440, 445, 450, 455, 460, 465, 470, 475, 480, 485, 490, 495, 500, 505, 510, 515, 520, 525, 530, 535, 540, 545, 550, 555, 560, 565, 570, 575, 580, 585, 590, 595, 600, 605, 610, 615, 620, 625, 630, 635, 640, 645, 650, 655, The excitation source may provide an excitation wavelength of 660, 665, 670, 675, 680, 685, 690, 695, 700, 705, 710, 715, 720, 725, 730, 735, 740, 745, 750, 755, 760, 765, 770, 775, 780, 785, 790, 795, 800, 805, 810, 815, 820, 825, 830, 835, 840, 845, 850, 855, 860, 865, 870, 875, 880, 885, 890, 895, or 900 nm. The excitation source may provide an excitation wavelength of about 600 nm to about 700 nm. The excitation source may provide an excitation wavelength of about 610 nm to about 680 nm. The excitation source may provide an excitation wavelength of about 620 nm to about 660 nm. The signal emitted from the light detectable sensor may be about 400, 405, 410, 415, 420, 425, 430, 435, 440, 445, 450, 455, 460, 465, 470, 475, 480, 485, 490, 495, 500, 505, 510, 515, 520, 525, 530, 535, 540, 545, 550, 555, 560, 565, 570 , 575, 580, 585, 590, 595, 600, 605, 610, 615, 620, 625, 630, 635, 640, 645, 650, 655, 660, 665, 670, 675, 680, 685, 690, 695, 700, 705, 710, 715, 720, 725, 730, 735, 740, 745, 750, 755, 760, 765, 77. The signal may be collected by the detection assembly at an emission wavelength of 0, 775, 780, 785, 790, 795, 800, 805, 810, 815, 820, 825, 830, 835, 840, 845, 850, 855, 860, 865, 870, 875, 880, 885, 890, 895, or 900 nm. The signal may be collected by the detection assembly at an emission wavelength of about 600 nm to about 900 nm. The signal may be collected by the detection assembly at an emission wavelength of about 620 nm to about 880 nm. The signal may be collected by the detection assembly at an emission wavelength of about 650 nm to about 850 nm. In some cases, the detection assembly may include a photodiode that converts the optical signal to a current signal.
[0040]
[0049] The term "optically detectable sensor" as used herein generally refers to an optically detectable sensor that can be attached to a well or a cell. The cell may include the optically detectable sensor. The medium in the well may include the optically detectable sensor. The optically detectable sensor may be detected by collecting light emitted by the optically detectable sensor at an emission wavelength by a detection assembly of the system. The optically detectable sensor may be a fluorescent sensor, a luminescent sensor, a phosphorescent sensor, or any combination thereof. The optically detectable sensor may detect light within a wavelength range, such as a near-infrared sensor, a panchromatic sensor, a blue-green sensor, an ultraviolet sensor, or a combination thereof. The optically detectable sensor may detect light within a wavelength range, such as about 800 nm to about 1000 nm, about 700 nm to about 900 nm, about 600 nm to about 800 nm, about 500 nm to about 700 nm, about 400 nm to about 600 nm, or any combination thereof. The optically detectable sensor may include a sensor that may detect one or more characteristics of the cell. For example, the optically detectable sensor may include a sensor that detects changes in cell membrane potential, intracellular ion concentrations, protein structure, or any combination thereof.
[0041]
[0050] As used herein, the term "ion" generally refers to any positively or negatively charged atom or molecule. In some cases, the ion may be an intracellular or extracellular ion. The ion may include calcium ions, sodium ions, potassium ions, hydrogen ions, chloride ions, magnesium ions, iron ions, manganese ions, biocarbonate ions, or any combination thereof. The ion may include any ion that may flow into and / or out of a cell, for example, through an ion channel.
[0042]
[0051] The term "molecule" as used herein generally refers to any peptide, amino acid, small molecule, or any other structure containing at least two atoms linked together by a chemical bond. The molecule may be a drug or an investigational drug. The molecule may be a therapeutic compound used to treat a subject with a condition. The molecule may be a therapeutic compound under evaluation for treating a subject with a condition.
[0043]
[0052] The term "sequence homology" as used herein generally refers to the calculation of "homology" or "percent homology" between two or more nucleotide or amino acid sequences, which can be determined by aligning the sequences for optimal comparison purposes (e.g., gaps can be introduced into the sequence of the first sequence). The nucleotides at corresponding positions are then compared, and the percent identity between the two sequences can be a function of the number of identical positions shared by the sequences (i.e., % homology = number of identical positions / total number of positions × 100). For example, a position in a first sequence can be occupied by the same nucleotide as the corresponding position in a second sequence, and the molecules are identical at that position. The percent sequence homology between two sequences can also be a function of the number of identical positions shared by the sequences, taking into account the number of gaps and the length of each gap that need to be introduced for optimal alignment of the two sequences. In some embodiments, the sequence length of the aligned sequence for comparison is at least about 30%, at least about 40%, at least about 50%, or at least about 100% of the sequence length of the reference sequence. The homology may be at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 91%, at least about 92%, or at least about 93%. Alternatively, the homology may be at least about 94%, at least about 95%, at least about 96%, at least about 97%, at least about 98%, or at least about 95%. A BLAST® search may determine the homology between two sequences. The two sequences may be genes, nucleotide sequences, protein sequences, peptide sequences, amino acid sequences, or fragments thereof. The actual comparison of the two sequences can be accomplished by well-known methods, such as using a mathematical algorithm. A non-limiting example of such a mathematical algorithm is Karlin, S. and Altschul, S., Proc. Natl. Acad. Sci. USA, 90-5873-5877 (1993). Such algorithms can be incorporated into the NBLAST and XBLAST programs (version 2.0), as described in Altschul, S. et al., Nucleic Acids Res, 25:3389-3402 (1997). When utilizing BLAST and Gapped BLAST programs, any relevant parameters of the respective programs (e.g., NBLAST) can be used. For example, parameters for sequence comparison can be set to score=100, word length=12, or can be modified (e.g., W=5 or W=20). Other examples include the Myers and Miller, CABIOS (1989), ADVANCE, ADAM, BLAT, and FASTA algorithms. In another embodiment, the percent identity between two amino acid sequences can be achieved, for example, using the GAP program in the GCG software package (Accelrys, Cambridge, UK).
[0044]
[0053] Advantages of the systems, devices, and methods described herein may include substantially parallel or simultaneous multi-layer acquisition of signals, such as cellular signals. This advantage may be achieved in part by the system's transmission geometry, which provides transmitted light or transillumination fluorescence to multiple wells or samples in an array. Systems lacking this structural feature of transmission geometry may lack sufficient illumination intensity necessary for multi-layer acquisition. Other advantages provided by the systems, devices, and methods described herein may include (a) achieving repeated stimulation and response signal monitoring across multiple wells substantially in parallel or simultaneously for sustained periods; (b) achieving accurate recording of signals with short response times (e.g., sub-millisecond perturbations) across multiple wells substantially in parallel or simultaneously; and (c) combining fast-response probes with fast sampling rates on multiple wells with low signal-to-noise ratios substantially in parallel or simultaneously. Conventional systems are configured either (a) to measure one sample at a time with a high sampling rate and acceptable signal-to-noise ratio, or (b) to measure multiple samples with slow-response probes or slow sampling rates, but these conventional systems may not be able to achieve both functions. In contrast, the systems, devices, and methods described herein can accomplish both.
[0045]
[0054] As shown in FIG. 1 , the systems described herein may include an illumination assembly 102, an array of wells 101, and a detection assembly 103. The illumination assembly may include one or more illumination sources 501, one or more illumination optics 502, as shown in FIG. 5 . Light from the illumination assembly may be directed toward one or more samples 503. In some cases, the samples may include one or more cells. The system may also include emission optics 504 and detection electronics 505 to collect signals that may be emitted from the samples. A computer 506 may be operably connected to one or more system elements, such as the illumination source 501, the one or more samples 503, the detection electronics 505, or any combination thereof.
[0046]
[0055] The illumination assembly may include one or more excitation sources. In some cases, an external excitation source can be operably coupled to the system. The illumination assembly may be configured to direct light from the excitation source to a well of the array of wells or a portion of a microplate or a plurality of wells of the array of wells. Each well of the plurality of wells may be configured to receive one or more cells. Light may be directed from the excitation source to at least a well of the array of wells. The light can illuminate at least a portion of the well to form an at least partially illuminated well. The light may completely illuminate the well. The light may be directed to illuminate at least a portion of each well of the plurality of wells, or may occur in parallel. The light may be directed to illuminate at least a portion of the cells received in the well. The light may be directed to illuminate each cell received in the well, or to illuminate at least about 50%, 60%, 70%, 80%, or 90% of the cells received in the well. The light may be directed to illuminate at least about 60% of the cells received in the well. The light may be directed to illuminate at least about 70% of the cells received in the well. The light may be directed to illuminate at least about 80% of the cells received in the well. The light may be directed to illuminate at least about 90% of the cells received in the well. The light may be directed to illuminate at least about 95% of the cells received in the well. The light may be directed to illuminate at least a portion of the cells received in each well of a plurality of wells in parallel, such that illuminated cells in different wells are illuminated in parallel.
[0047]
[0056] The detection assembly may include one or more detectors. The detector may be an optical detector. The detector may be a photodiode. The detector may be a photomultiplier tube (PMT). The detection assembly may include one or more photodiodes, photomultiplier tubes, CCD cameras, or combinations thereof. The detection assembly may include a detector corresponding to each well of the plurality of wells. The detection assembly may be configured to collect and transmit a signal to one or more detectors. The detection assembly may collect a signal from a portion of the well that may be illuminated. The detection assembly may collect a signal from a portion of the cells received in the well. The signal may be collected from a portion of the cells that may be illuminated by an excitation source. The signal may be an optical signal, such as a fluorescent signal. The signal may be converted, such as by converting the optical signal to a current signal. The conversion may be performed by a detector, such as a photodiode. Collection of signals from each well of the plurality of wells may be performed in parallel, such as collecting signals from 384 wells in parallel. The temporal resolution of the detection assembly, such as collection and transfer across multiple wells of an array of wells, may be about 100 Hertz (Hz), 1,000 Hz, 10,000 Hz, 20,000 Hz, or greater.
[0048]
[0057] The characteristics of the light provided by the excitation source may be adjustable. For example, the intensity of the light may be adjustable. The wavelength of the light may be adjustable. The temporal pattern of the light may be adjustable, such as constant light or timed light pulses. A user may adjust the light characteristics, such as intensity. A controller of the system may direct the adjustment of the light characteristics. The light characteristics may be adjusted in response to a feedback signal, such as adjusting the wavelength to properly excite a light-detectable sensor in a well. The light characteristics may be adjusted in response to a particular assay that may be performed using the system. Adjusting the light characteristics, such as intensity, may result in a response delay of less than about 1 millisecond. The response delay may be less than about 10 milliseconds. The response delay may be less than about 5 milliseconds. The response delay may be less than about 2 milliseconds. The response delay may be less than about 1 millisecond. The response delay may be less than about 0.75 milliseconds. The response delay may be less than about 0.5 milliseconds. The response delay may be less than about 0.25 milliseconds. The response delay may be less than about 0.1 milliseconds.
[0049]
[0058] The excitation source may provide a light intensity to each well of the plurality of wells. For example, each well of the plurality of wells may provide a light intensity of about 5 milliwatts per square millimeter (mW / mm 2 ) light intensity. Each well of the plurality of wells can receive a light intensity of at least about 5 mW / mm 2 Each well of the plurality of wells can receive a light intensity that does not vary in magnitude by more than about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 15%, or 20% across the plurality of wells.
[0050]
[0059] The detection assembly may be configured to collect a signal, such as an optical signal, and direct the signal to a corresponding detector. For each well of the plurality of wells, the detection assembly may be configured to collect a signal and direct at least a portion of the signal to a corresponding detector. The detection assembly may be configured to collect a signal and direct at least about 90%, 95%, 96%, 97%, 98%, or 99% of the signal to a corresponding detector. The detector may be a photodiode. In some cases, the photodiode detector may include a pin (PIN) photodiode, a pn (PN) photodiode, an avalanche photodiode, a Schottky photodiode, or any combination thereof. The detector, such as a photodiode, may be configured to collect a signal, such as an optical signal, which may include a fluorescent signal, a phosphorescent signal, a luminescent signal, or any combination thereof.
[0051]
[0060] The systems described herein can be configured to receive an array of wells, such as a microplate. The array of wells may include a plurality of wells. The plurality of wells may include at least about 1 well, 6 wells, 16 wells, 32 wells, 96 wells, 384 wells, or more. The wells may be configured to receive one or more cells. Each well of the plurality of wells may be configured to receive one or more cells. In some cases, at least some of the plurality of wells may include an optically detectable sensor, such as an extracellular optically detectable sensor or an optically detectable sensor in a liquid medium. In some cases, at least some of the plurality of cells may include an optically detectable sensor.
[0052]
[0061] The systems described herein can be configured to detect the presence or absence of activation of an optically detectable sensor. The optically detectable sensor may include a sensor for detecting changes in (i) cell membrane potential, (ii) intracellular ion concentration, (iii) protein structure, or (iv) any combination thereof. The sensor can detect changes in intracellular ion concentration. The sensor may include Fura-2, Indo-1, Fluo-3, Fluo-4, Fluo-5F, Fluo-5N, Rhodo-2, Calcium Green, Calcium Red, Fura Red, Kin-2, any salt thereof, or a combination thereof. The sensor may detect changes in cell membrane potential. The sensor may include JC-1 iodide (CAS No. 47729-63-5), JC-1 (CAS No. 3520-43-2), di-3-ANEPPDHQ, di-4-ANEPPS (CAS No. 90134-00), di-8-ANEPPS (CAS No. 157134-53-7), DiBAC4(3) (CAS No. 70363-83-6), BeRST, Di-4-ANBDQBS, VF2.1.C1, RH237 (CAS No. 83668-91-1), RH414 (CAS No. 161433-30-3), RH421 (CAS No. 107610-19-5), RH795 (CAS No. 172807-13-5), any salt thereof, or any combination thereof. The sensor may detect changes in intracellular ion concentrations. The sensor may detect calcium ions, sodium ions, potassium ions, hydrogen ions, chloride ions, or any combination thereof. The sensor may be a genetically encoded sensor. The genetically encoded sensor may detect a biological response such as a change in membrane potential, a change in intracellular ion concentration, a change in protein structure, or any combination thereof.
[0053]
[0062] The optically detectable sensor may be located within a cell or on the surface of a cell. The optically detectable sensor may be located in a medium in which the cells may be cultured. The presence or absence of activation of the optically detectable sensor may indicate a biological response, such as a change in ion flux or membrane potential. The system may be configured to detect the presence or absence of activation of the optically detectable sensor in each well of a plurality of wells in parallel. The system may be configured to detect the presence or absence of activation of the optically detectable sensor in each well of the plurality of wells in about 1 millisecond to about 1 minute. The system may be capable of detecting the presence or absence across multiple wells in about 1 minute, 100 milliseconds, 10 milliseconds, 1 millisecond, or less. In some cases, the system can be configured to detect changes in the intensity of the optically detectable sensor simultaneously in each well of a plurality of wells in less than about 1 millisecond with a signal-to-noise ratio of greater than about a 5 / 10 millivolt (mV) change in cell membrane potential, a 10 / 10 mV change in cell membrane potential, a 15 / 10 mV change in cell membrane potential, a 20 / 10 mV change in cell membrane potential, a 25 / 10 mV change in cell membrane potential, or a 50 / 10 mV change in cell membrane potential, or more.
[0054]
[0063] The light from the excitation source may include steady light, timed light pulses, or a combination thereof. The timed light pulses may have a duration of less than about 100 milliseconds. The timed light pulses may have a duration of less than about 10 milliseconds. The timed light pulses may have a duration of less than about 1 millisecond. The timed light pulses may have a duration of less than about 1000 milliseconds. The timed light pulses may have a duration of between about 10 milliseconds and about 100 milliseconds. The timed light pulses may have a duration of between about 50 milliseconds and about 100 milliseconds. The timed light pulses may include one or more wavelengths. The one or more wavelengths of the timed light pulses may be the same wavelength or may be different wavelengths, such as at least two different wavelengths, at least three different wavelengths, or more.
[0055]
[0064] The plurality of cells may include spontaneously electrically active cells, optically paced excitable cells, or a combination thereof. The plurality of cells may include a cell line or primary cells. The plurality of cells may include cells obtained from a subject. The plurality of cells may include cells obtained from a biological sample obtained from a subject. The plurality of cells may include cells obtained from a cell bank, tissue bank, or other population bank. The spontaneously electrically active cells may include cardiomyocytes, cortical neurons, dorsal root ganglion neurons, or any combination thereof. The optically paced excitable cells may include ventricular muscle cells, skeletal muscle cells, or a combination thereof.
[0056]
[0065] The systems described herein may include one or more filters, such as an emission filter. The filter may be configured to allow the detection assembly to collect the signal and remove light from the excitation source. The systems may include one or more lenses, such as a focusing lens, a single collimating lens, or a combination thereof. The lens may be configured to direct the signal to a detector. The lens may be configured to direct light from the excitation source to at least a portion of the well. The systems may include one or more amplifiers. The amplifier may include an on-board transimpedance amplifier.
[0057]
[0066] The kit may include the system and instructions for use described herein. The kit may include the system described herein. The kit may include the systems and reagents and / or instructions for use necessary for i) hERG screening, ii) screening of molecules against intact cardiomyocytes, iii) cardiomyocyte safety pharmacology screening, or iv) a combination thereof. The kit may include one or more optically detectable sensors and instructions for use.
[0058]
[0067] The method may include a method of making a kit or a method of making a system. The method may include a method of hERG screening using a system as described herein. The method may include a method of screening molecules against intact cardiomyocytes using a system as described herein.
[0059]
[0068] The method may include detecting a light-detectable sensor in a plurality of cells. The method may include providing an array of wells including a plurality of wells. Each well of the plurality of wells may include one or more cells. The cells may include a light-detectable sensor. In some cases, at least a portion of the one or more cells may include a light-detectable sensor. Light may be irradiated from an excitation source onto each well of the plurality of wells to illuminate at least a portion of each well of the plurality of wells to form an at least partially illuminated well. Signals may be collected in parallel from each well of the plurality of wells, and the signals may be transferred in parallel to a corresponding detector. Each signal of the plurality of signals may confirm the presence or absence of activation of the light-detectable sensor.
[0060]
[0069] The method may include screening for biological activity of a molecule or salt thereof in a plurality of cells. The method may include providing a well array including a plurality of wells. Each well of the plurality of wells may contain one or more cells. The molecule or salt thereof may be added to at least a portion of the plurality of wells. Light may be directed from an excitation source to each well of the plurality of wells to illuminate at least a portion of each well. The presence or absence of activation of a light-detectable sensor may be detected in each well of the plurality of wells in parallel.
[0061]
[0070] The systems described herein combine fast response probes or optically detectable sensors with fast sampling rates to collect signals from multiple samples in parallel with a high signal-to-noise ratio (SNR). For example, the optically detectable sensors may have a response time constant of less than about 1 millisecond. In some cases, the response time constant may be less than about 100 microseconds. In such cases, the system can measure changes in the optically detectable sensors in each well of multiple wells in parallel. Parallel measurements across multiple wells may occur in less than about 1 millisecond. Parallel measurements across multiple wells may occur in less than about 100 microseconds. The SNR of the system may exceed a cell membrane potential change of about 5 / 10 mV, or exceed a cell membrane potential change of about 25 / 10 mV, or exceed a cell membrane potential change of about 50 / 10 mV. In some cases, the system may induce a monitorable change in cell membrane potential. For example, the system can generate multiple timed light pulses from an excitation source. The multiple timed light pulses may include the same or different wavelengths to excite the optically detectable sensors. The timed light pulse may be less than about 100 milliseconds, less than about 75 milliseconds, less than about 50 milliseconds, less than about 25 milliseconds, less than about 10 milliseconds, or less than about 5 milliseconds. The light-dependent actuator protein may cause a monitorable change in cell membrane potential. The light-dependent actuator protein may be used alone or in combination with multiple timed light pulses to cause a monitorable change in cell membrane potential. The light-dependent actuator protein may include Chlamydomonas chop1, Chlamydomonas chop2, or an expressed protein having at least about 52% sequence identity, about 52% sequence length, or a combination thereof with chop1 or chop2. The light-dependent actuator protein may include a light-gated glutamate receptor (LiGluR).
[0062]
[0071] Signals may be collected from regions of an array of wells containing multiple cells. For example, the regions may be individual wells containing multiple cells. Signals may be collected simultaneously or in parallel from multiple wells (16 wells, 96 wells, 384 wells, etc.).
[0063]
[0072] The system may include an illumination system including one or more excitation sources. The system may be operably connected to an external excitation source. The intensity of the excitation source may be adjustable by a user or by a controller of the system. The delay time in adjusting the intensity of the excitation source from a first intensity to a second intensity may be less than about 10 milliseconds. The delay time may be less than about 1 millisecond. The excitation source may provide the same intensity to each well of the plurality of wells. The excitation source may provide a similar intensity to each well of the plurality of wells, e.g., an intensity that varies by less than 10% across the plurality of wells. The excitation source may have an output of about 1 mW / mm 2 , 5mW / mm 2 , or 10 mW / mm 2 may be provided to each well of the plurality of wells, with an intensity that may exceed .
[0064]
[0073] In some cases, the system may include one or more optical systems. The system may include one or more excitation optical systems, one or more collection optical systems, or a combination thereof. The excitation optical system may be configured to direct light from an excitation source to multiple wells of the system. The collection optical system may be configured to collect signals, including collecting signals from multiple wells, optionally in parallel. In some cases, the focal length of the excitation optical system into the well may be longer than the focal length of the signal collection optical system that collects signals from the well. The focal length of the excitation optical system may be approximately 1%, 5%, 10%, or 20% longer than the focal length of the signal collection optical system. The focal length of the excitation optical system may be at least approximately 1%, 5%, 10%, or 20% longer than the focal length of the signal collection optical system. The focal length of the excitation optical system may be the same as the focal length of the signal collection optical system. The focal length of the signal collection optical system may be longer than the focal length of the excitation optical system. The focal length of the signal collection optical system may be approximately 1%, 5%, 10%, or 20% longer than the focal length of the excitation optical system. The focal length of the signal collection optics may be at least about 1%, 5%, 10%, or 20% longer than the focal length of the excitation optics.
[0065]
[0074] The system can be configured to collect signals from multiple wells of the system. The signals can be optical signals, such as fluorescent signals, phosphorescent signals, luminescent signals, visible signals, or any combination thereof. The optical signals can be converted to current signals by a detector of the system, such as a photodiode. The system can also be configured so that signals can be collected in a transmission geometry. For example, as shown in FIG. 2, an illumination assembly 202 can direct light from an excitation source to an array of wells 201. Multiple wells in the array of wells can be configured to receive multiple cells. A portion of the light that may pass through the multiple wells can be a transmitted beam 204. A portion of the light that may pass through the multiple wells can be a scattered beam 205. The system can include a detector 203 for collecting a portion of the scattered beam 205. The angle θ between the scattered beam 205 and the transmitted beam 204 can be about θ=0. The angle θ can be about θ=1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, or 15. Angle θ may be θ=about 5. Angle θ may be θ=about 10. Angle θ may be θ=about 15. Angle θ may be less than about 5. Angle θ may be less than about 4. Angle θ may be less than about 3. Angle θ may be less than about 2. Angle θ may be less than about 1.
[0066]
[0075] In some cases, such as when angle θ=0, the excitation light may be collected by the detection assembly. In some cases, the excitation light may not be collected by the detection assembly. In some cases, some of the excitation light may be collected by the detection assembly. In some cases, the excitation light may also be filtered out so that a signal is detected but the excitation light is not. In some cases, some of the excitation light may be collected by the detection assembly. In some cases, the excitation light may be collected by the detection assembly. In some cases, by changing angle θ, the portion of the excitation light that can be collected by the detection assembly can also be changed. The system may also change the excitation light that may be collected by the detection assembly. The optical signal may include one or more filters that may filter out a portion of the excitation light. The filters may filter out a portion of the excitation light. The filters may filter out the excitation light so that the detector (i.e., photodiode) converts the optical signal to a current signal but does not convert the excitation light.
[0067]
[0076] The system may include an optical system, such as a detection assembly including collection optics configured to collect a signal. The system may include an optical system, such as an illumination assembly including excitation optics configured to direct light to multiple wells. In some cases, the system may include a combination of collection optics and excitation optics. The numerical aperture of the optical system may be adjustable. The system may be configured to exchange one or more optical systems with different numerical apertures. A larger numerical aperture may allow a greater amount of signal to be collected by the detector. For example, an optical system including a numerical aperture of 0.8 may collect a larger amount of signal than an optical system including a numerical aperture of 0.2. The numerical aperture of the optical system, such as the signal collection optics, may be about 0.2. The numerical aperture of the optical system may be about 0.3. The numerical aperture of the optical system may be about 0.4. The numerical aperture of the optical system may be about 0.5. The numerical aperture of the optical system may be about 0.6. The numerical aperture of the optical system may be about 0.7. The numerical aperture of the optical system may be about 0.8. The numerical aperture of the optical system may be about 0.2 to about 0.8. The numerical aperture of the optical system may be about 0.3 to about 0.7. The numerical aperture of the optical system may be from about 0.4 to about 0.6. The numerical aperture of the optical system may be from about 0.3 to about 0.8. The numerical aperture of the optical system may be from about 0.2 to about 0.7.
[0068]
[0077] The collection optics of the system may be configured to collect signals, such as optical signals (i.e., fluorescent signals), onto corresponding detectors, such as photodiodes. The detectors, such as photodiodes, can convert the optical signals into current signals. The collection optics can collect signals from a region of a well among the plurality of wells. The region collected from the collection optics can be about 0.5, 1, 5, 10, 15, 20, 25, 30, 35, 40, 45, 50, 60, 70, 80, 90, 100, 200, 300, 400, or 500 mm 2 may be.
[0069]
[0078] In some cases, it may be advantageous to minimize the collection area of the detector. Minimizing the collection area of the detector can minimize noise in the system. The diameter of the collection area of the detector may be approximately 0.5, 0.75, 1.0, 1.25, 1.5, 1.75, 2.0, 2.25, 2.5, 2.75, 3.0, 3.5, or 4.0 mm. The diameter of the collection area of the detector may be less than approximately 0.5, 0.75, 1.0, 1.25, 1.5, 1.75, 2.0, 2.25, 2.5, 2.75, 3.0, 3.5, or 4.0 mm. The diameter of one well of the multiple wells may be approximately 0.5, 0.75, 1.0, 1.25, 1.5, 1.75, 2.0, 2.25, 2.5, 2.75, 3.0, 3.5, 4.0 mm, or greater. The diameter of one well of the plurality of wells may be approximately 0.5, 0.75, 1.0, 1.25, 1.5, 1.75, 2.0, 2.25, 2.5, 2.75, 3.0, 3.5, 4.0 mm, or more. The diameter of the detector's collection region may be equal to the diameter of the well, e.g., both may be approximately 2.0 mm. The diameter of the detector's collection region may be smaller than the diameter of the well. For example, the well may be approximately 3.0 mm in diameter and the collection region may be approximately 2.0 mm in diameter. The diameter of the detector's collection region may be larger than the diameter of the well. For example, the well may be approximately 1.0 mm in diameter and the collection region may be approximately 2.0 mm in diameter. The system may be configured to provide a magnification of the collection optics such that the ratio of the area of the well from which a signal is collected to the area of the signal that may be transferred to the detector's collection region is approximately 1:1.
[0070]
[0079] The ratio is the area where signal can be collected to the area where signal can be transferred to the detector. The ratio may be 1:1. The ratio may be 1:0.5 to about 1:1.5.
[0071]
[0080] The ratio can be the fraction of light that can illuminate the well to the fraction of signal that can be collected from the well. The ratio can be about 1:1. The ratio can be about 1:0.5 to about 1:1.5.
[0072]
[0081] The ratio can be the fraction of wells in a plurality of wells that can be illuminated to the fraction of wells that can collect and transfer a signal to a detector. The ratio can be about 1:1. The ratio can be about 1:0.5 to about 1:1.5.
[0073]
[0082] The portion of the well that may be illuminated may contain at least about 1, 10, 50, 100, 500, 1000, 2000, or more cells. The portion of the well from which a signal can be collected may contain at least about 1, 10, 50, 100, 500, 1000, 2000, or more cells. The active portion of the corresponding detector may be equal to the illuminated portion of the well. The active portion of the corresponding detector may be similar to the illuminated portion of the well.
[0074]
[0083] An advantage of the systems described herein may be that they provide efficient collection and detection of signals, such as fluorescent signals or signals from optically detectable sensors. The systems may include one or more lenses. The detection assembly of the systems may include one or more lenses, such as a focusing lens. The focusing lens of the systems described herein may include a diameter of approximately 6 millimeters and a focal length of approximately 6 millimeters. The one or more lenses may be positioned by or operably coupled to a machined plate. In some cases, shortening the focal length of the lens may increase the proportion of signal that may be collected by the lens. In some cases, the proportion is given by proportion = 1 / 2(1 - cos(θ)).
[0075]
[0084] In some cases, when θ is small, the ratio is: ratio = sin 2 (θ) / 4 or NA 2 It may also be given as / 4.
[0085] where NA is the numerical aperture. In some cases, the lens may be placed in a gaseous medium, such as ambient air. In some cases, the lens may be placed in a liquid medium.
[0076]
[0086] In some cases, the systems described herein provide a collecting lens having a focal length similar to the focal length of a lens capable of focusing a signal onto a corresponding detector. In some cases, the focal length of the collecting lens may be equal to the focal length of the lens capable of focusing a signal onto a corresponding detector.
[0077]
[0087] The one or more detectors of the systems described herein may include one or more photodiodes. The one or more detectors may include a high response to signals containing wavelengths similar to near-infrared light, such as from about 700 nanometers to about 1300 nanometers. The one or more detectors may be arranged or configured in a detector array. The array of detectors may correspond to the array of wells received by the system. For example, a system may accept a 384-well plate, and the system may be configured with an array of 384 corresponding detectors. The detector array may be combined with one or more on-board transimpedance amplifiers.
[0078]
[0088] The systems described herein may operate at frequencies of approximately 100 Hertz (Hz), 250 Hz, 500 Hz, 750 Hz, 1,000 Hz, 2,000 Hz, 5,000 Hz, 6,000 Hz, 7,000 Hz, 8,000 Hz, 9,000 Hz, 10,000 Hz, 11,000 Hz, and 12,000 Hz. The system may provide a sampling rate of signals from a well that may exceed about 100 Hertz (Hz), 1,000 Hz, 5,000 Hz, 10,000 Hz, 15,000 Hz, or more. The system may provide a sampling rate of signals across multiple wells that may be about 100 Hertz (Hz), 1,000 Hz, 5,000 Hz, 10,000 Hz, 15,000 Hz, or more. The sampling rate may be about 500 Hz to about 12,000 Hz. The sampling rate may be about 500 Hz to about 5,000 Hz. The sampling rate may be about 8,000 Hz to about 12,000 Hz. The sampling rate may be at least about 100 Hz to about 15,000 Hz. The sampling rate may be at least about 200 Hz to about 15,000 Hz. The sampling rate may be at least about 300 Hz to about 15,000 Hz. The sampling rate may be at least about 400 Hz to about 15,000 Hz. The sampling rate may be at least about 500 Hz to about 15,000 Hz. The sampling rate may be at least about 1,000 Hz to about 15,000 Hz.
[0079]
[0089] FIG. 3a shows a system described herein. FIG. 3b shows an enlarged subset of FIG. 3a, with the enlarged subset shown in dotted lines in FIG. 3a. In FIG. 3b, the optical elements for one well of the multiple wells are highlighted. A lens (such as a fluorescence collection lens) is shown as 302 in FIG. 3b, and a filter (such as an emission filter) is shown as 303. The filter 303 can be located below the lens 302. The filter can be located above the lens. A lens (such as a lens that can focus a signal onto a detector, such as a photodiode detector) is shown as 305. The lens 305 can be located within the plate, shown as 304. A detector (such as a detector corresponding to one well of the multiple wells) is shown as 306. A lens (such as a focusing lens) can be located above the microplate received by the system, and the lens can be shown as 301. Above the lens 301, the system can also include a lens (e.g., a collimation lens), shown as 307 in FIG. 3c. A collimation lens may be positioned above lens 301. In some systems such as those described herein, the excitation source may provide divergent light that may be collimated by a lens such as collimation lens 307.
[0080]
[0090] The systems described herein may be used in the field of environmental toxicology assessment of molecules (such as chemicals), which may typically be performed using cultures of spontaneously behaving cortical neurons. Similar studies of spontaneously behaving or light-modulated neuronal firing patterns may also be performed.
[0081]
[0091] The system described herein may be used in the field of high-throughput screening of ligand-modulated targets using photoactivatable ligands. Instead of using a light-sensitive voltage modulator to control voltage-gated ion channel target activity, a photoactivatable ligand may be added to cell culture media and used to modulate the activity of the target. The target may be present in cells due to natural expression (e.g., in neurons) or heterologous expression and may be an ion channel or G protein. The biological response of the sensor can be measured at one wavelength, while the effective "dose" of the ligand can be controlled by modulating the duration or intensity of light at a second wavelength that can activate the ligand. The ligand may be a neurotransmitter (e.g., glutamate, GABA, acetylcholine, purine nucleotide), an ion (calcium), a small drug-like molecule, or a macromolecule. The ligand may be caged (permanently changed by light irradiation) or photoswitchable (reversible light-induced activation / inactivation). In some cases, a glutamate photoswitchable ligand may interact with the LiGluR ion channel. This application can be extended to biochemical assays.
[0082]
[0092] The system described herein can be used in the field of high-throughput screening of targets indirectly modulated by photosensitive actuators. In such cases, light-activated receptors (e.g., melanopsin) or enzymes (e.g., adenylyl cyclase) can be controlled. Second messengers (e.g., phosphoinositides or cyclic adenosine monophosphate (AMP)) can act on the target, and its function can be optically monitored.
[0083]
[0093] The system described herein can be used in the field of safety pharmacology. For example, in the field of safety pharmacology, the system can be used as part of integrated human cell studies standardized in the U.S. Food and Drug Administration's (FDA) comprehensive in vitro arrhythmia assessment guidelines. The system described herein can also be used in safety pharmacology testing in optically paced cardiomyocytes. The system described herein can be used for all-optical voltage modulation and / or high-throughput screening of ion channel targets. In such cases, the system can be configured for non-excitable cells and heterologously expressed ion channel targets. The system described herein can be used as an alternative or supplement to traditional hERG screening.
[0084]
[0094] For example, cells can be plated and grown or attached in standard optical-bottom 96- or 384-well plates. Cells can be: a) induced pluripotent stem cells (iPSCs) or stem cell-derived cardiomyocytes, which may be spontaneously active; b) cardiomyocytes, which may heterologously express a light-sensitive actuator (typically rhodopsin), or c) channelrhodopsin-derived cardiomyocytes. The wells may contain: a) a mixture of non-excitable cells and cardiomyocytes, which may heterologously express a photosensitive actuator and one or more target ion channels; b) non-excitable cells engineered to heterologously express a photosensitive actuator and one or more target ion channels, which can be combined to become excitable in a characteristic way; or d) any combination thereof. The cells may be stained with a voltage-sensitive dye (or other fluorescent sensor). One or more molecules may be added to a subset of multiple wells. The molecule-containing wells may be compared to multiple control wells, or compared to the baseline activity of each well measured before compound addition.
[0085]
[0095] Changes in voltage (or other sensors) can be monitored. For example, spontaneous activity can be monitored for approximately 30 seconds using one excitation light wavelength. Cellular activity may be induced or modulated by one or more actuation light pulses at a second wavelength. The light pulse regimen can be varied in frequency, duration, intensity, or other parameters to affect light-induced voltage changes. The time or pulse interval can be varied. This variation may cause the ion channel target to adopt a "non-resting" or transient conformational state that may differentially interact with molecules present in the well. The profile of pharmacological effects on cellular responses using different illumination / activation protocols may have predictive therapeutic or toxicological implications.
[0086]
[0096] To reduce electronic noise, the voltage (or other) trace is first subjected to one or more standard electronic "long-pass" filtering algorithms. Spontaneously active cell voltage traces can be analyzed using in-house developed event detection algorithms. Events of interest, such as action potentials (or "beats" in the case of cardiomyocytes), can be detected based on the precise temporal start and end points of each event, the upstroke duration of the event, the maximum luminosity (fluorescence change) of each event, the duration of each event at a specific percentage of maximum luminosity ("action potential duration"), or user- or controller-specified parameters that can guide the identification of features such as event rate, duration, or rhythm. Induced or modulated activity traces may be analyzed using the event detection algorithms described above, or more generally, different Measurements may be taken in a defined region of interest relative to the stimulation light pulse using a software algorithm. The types of measurements may be similar to those described above.
[0087]
[0097] The system described herein may be used for screening ion channel targets expressed in cells such as non-excitable cells (i.e., HEK293 cells or CHO cells). The screening may be for heterologously expressed ion channels. For example, the target ion channel, light-gated actuator protein, and accessory ion channel may be expressed in non-excitable cells. The ion channel or auxiliary ion channel may include a voltage-gated ion channel, a ligand-gated ion channel, or a combination thereof. The voltage-gated ion channel may include a sodium channel, a calcium channel, a potassium channel, a transient receptor potential (TRP) channel, a proton channel, or any combination thereof. The ligand-gated ion channel may include an acetylcholine receptor, an ionotropic glutamate-gated receptor, an acid-sensing ion channel (ASIC), an adenosine triphosphate (ATP)-gated P2X receptor, an anion-permeable gamma-aminobutyric acid-gated (GABAa) receptor, or any combination thereof.
[0088]
[0098] The light-dependent actuator protein may be stimulated with a wavelength of light, such as light from an excitation source. The wavelength of light may be about 400 nanometers to about 1000 nanometers. The wavelength of light may be about 400 nanometers to about 800 nanometers. The wavelength of light may be about 400 nanometers to about 500 nanometers. The wavelength of light may be about 500 nanometers to about 600 nanometers. The wavelength of light may be about 600 nanometers to about 700 nanometers. The wavelength of light may be about 700 nanometers to about 800 nanometers. One or more cells may include a light-detectable sensor (such as a fluorescent dye) or a genetically encoded sensor, or a combination thereof. Thus, the cellular response of the target ion channel may be monitored via a signal, such as a fluorescent signal, from the light-detectable sensor. The optically detectable sensor or genetically encoded sensor, or a combination thereof, may be excited by a) a first wavelength of light, such as about 400 nanometers to about 500 nanometers, b) a second wavelength of light, such as about 600 nanometers to about 700 nanometers, or c) a combination thereof. Such optically detectable sensors or genetically encoded sensors can provide signals that can indicate a biological response or change, such as a change in cell membrane potential or a change in intracellular ion concentration. Thus, a change in the magnitude, temporal profile, or a combination thereof, of the optically detectable sensor or genetically encoded sensor observed upon contacting one or more cells with a molecule may indicate that such molecule acts on a target ion channel to cause a biological response.
[0089]
[0099] The target ion channels are (i) voltage-gated channels such as voltage-gated sodium channels, voltage-gated calcium channels, or voltage-gated potassium channels, or combinations thereof; (ii) inositides (TRP family), cyclic nucleoside analogs (CNAs), and cyclic nucleoside analogs (CNAs). (iii) ion channels that respond to second messengers such as nucleotides (HCNx, CNGx), calcium (KCax), or combinations thereof; (iv) potassium "leak" channels (K2Px); or (v) any combination thereof.
[0090]
[0100] Light-dependent actuator proteins are involved in the cation channel Chlamydomonas reinhardtii. Chop1, Chlamydomonas Chop2, proteins having greater than about 52% sequence homology, about 52% sequence length, or combinations thereof to Chop1 or Chop2. Light-dependent actuator proteins may also include light-activated glutamate receptors (LiGluRs), G proteins (such as melanopsin or mGluRs), adenylate cyclase (bPAC), or any combination thereof.
[0091]
[0101] Auxiliary ion channels regulate the resting cell membrane potential together with the defined extracellular potassium concentration. The auxiliary ion channel may also be a voltage-gated calcium, sodium, or potassium channel that is expressed in addition to the target ion channel.
[0092]
[0102] The disclosed system may be used for the pharmacological evaluation of electrically excitable cells. The system can be used with spontaneously electrically active cells. For example, a fluorescent voltage sensor or calcium sensor can be incorporated into the spontaneously electrically active cells. Light of a first wavelength can excite the sensor and emit fluorescence, which can be collected over time. Submillisecond-scale perturbations in response parameters can be detected via automated heuristic algorithms and used to predict potential target tissue toxicity. The spontaneously electrically active cells can be stem cells or induced pluripotent stem cell-derived cardiomyocytes, but can also be cortical neurons, dorsal root ganglion neurons, or stem cell-derived neurons.
[0093]
[0103] The disclosed system may also be used with optically paced excitable cells. For example, light-responsive actuator proteins and fluorescent voltage or calcium sensors can be introduced into spontaneously active or quiescent electrically excitable cells. A timed pulse of light of a certain wavelength can slow the electrical activity of excitable cells. The first wavelength can excite a fluorescent sensor, while the second wavelength can excite a fluorescent sensor. Variations in response parameters upon exposure to chemicals or proteins under different pacing conditions can be detected by automated heuristic algorithms and used to predict potential target tissue toxicity.
[0094]
[0104] The light-responsive actuators are Chlamydomonas Chop1 or Chop2, or greater than about 52% sequence homology, about 52% sequence length, or a combination thereof to CHOP1 or CHOP2. In one embodiment, the actuator can be expressed in non-excitable cells such as HEK293, and the actuator-expressing cells can be co-cultured with electrically excitable cells. In other embodiments, the light-responsive actuator can be expressed directly in excitable cells.
[0095]
[0105] Optically paced excitable cells, even if spontaneously active as described above, The cells may be excitable quiescent cells, including adult ventricular myocytes or skeletal myocytes.
[0096]
[0106] In some cases, each well of the plurality of wells includes a corresponding photodiode, etc. The system includes a detector that detects the excitation light. In some cases, each photodiode has a corresponding lens. The lens may be configured to focus a signal, such as an optical signal, onto the corresponding detector. Without a lens to focus the signal onto the corresponding detector, some of the signal may not be collected by the detector. The optical signal may be collimated or further filtered through a filter. In such cases, the signal may be collected by the detection assembly, and light from the excitation source may not be collected. The filter may be configured in a fixed or adjustable position. One or more components of the system, such as the lens, detector, filter, or a combination thereof, may be remotely controlled, electronically controlled, or manually controlled by a user. Each filter in the system may be independently wired. The detection assembly collects signals, such as fluorescent dyes, such as intracellular calcium dyes. In some cases, the system's controller may use an algorithm to process one or more signals collected from the system.
[0097]
[0107] The systems of the present disclosure include one or more detectors, such as photodiodes. In some cases, the system may include at least two detectors, e.g., a detector corresponding to each well of the plurality of wells. In some cases, the detection assembly may include one or more signal collection optics. When the system includes at least two signal collection optics, the numerical aperture of each signal collection optic may be (i) the same, such that both signal collection optics include a numerical aperture of about 0.5, or the respective numerical apertures may be (ii) different, such as when one signal collection optic includes a numerical aperture of about 0.5 and the second signal collection optic includes a numerical aperture of about 0.4. The numerical aperture of the signal collection optics may be about 0.2. The numerical aperture of the signal collection optics may be about 0.3. The numerical aperture of the signal collection optics may be about 0.4. The numerical aperture of the signal collection optics may be about 0.5. The numerical aperture of the signal collection optics may be about 0.6. The numerical aperture of the signal collection optics may be about 0.7. The numerical aperture of the signal collection optics may be about 0.8. The numerical aperture of the signal collection optics may be at least about 0.2. The numerical aperture of the signal collection optics may be at least about 0.3. The numerical aperture of the signal collection optics may be at least about 0.4. The numerical aperture of the signal collection optics may be at least about 0.5. The numerical aperture of the signal collection optics may be less than about 0.9. The numerical aperture of the signal collection optics may be less than about 0.8. The numerical aperture of the signal collection optics may be less than about 0.7. The numerical aperture of the signal collection optics may be less than about 0.6. The numerical aperture of the signal collection optics may be from about 0.2 to about 0.8. The numerical aperture of the signal collection optics may be from about 0.3 to about 0.7. The numerical aperture of the signal collection optics may be from about 0.4 to about 0.6.
[0098]
[0108] The system of the present disclosure may include an excitation source such that the illumination assembly may include the excitation source. The system may include at least two excitation sources. The system may include at least three excitation sources. The system may include at least four excitation sources. The system may include at least five excitation sources. At least two excitation sources may be the same, such as a first laser and a second laser. At least two excitation sources may be different, such as a laser and a light-emitting diode (LED) light. The excitation source may be a laser, an LED light, a xenon arc, or a mercury lamp. In some cases, the system includes a single laser with a beam splitter to direct a portion of the light from the laser to multiple wells.
[0099]
[0109] The sampling rate may be about 100 Hz. , or about 250 Hz. The sampling rate may be about 500 Hz. The sampling rate may be about 750 Hz. The sampling rate may be about 1,000 Hz. The sampling rate may be about 2,500 Hz. The sampling rate may be about 3,000 Hz. The sampling rate may be about 4,000 Hz. The sampling rate may be about 5,000 Hz. The sampling rate may be about 6,000 Hz. The sampling rate may be about 7,500 Hz. The sampling rate may be about 8,000 Hz. The sampling rate may be about 9,000 Hz. The sampling rate may be about 10,000 Hz. The sampling rate may be about 12,500 Hz. The sampling rate may be about 15,000 Hz. The sampling rate may be about 100 Hz or greater. The sampling rate may be about 250 Hz or greater. The sampling rate may be about 500 Hz or greater. The sampling rate may be about 750 Hz or greater. The sampling rate may be about 1,000 Hz or greater. The sampling rate may be about 2,500 Hz or greater. The sampling rate may be about 3,000 Hz or greater. The sampling rate may be about 4,000 Hz or greater. The sampling rate may be about 5,000 Hz or greater. The sampling rate may be about 6,000 Hz or greater. The sampling rate may be about 7,500 Hz or greater. The sampling rate may be about 8,000 Hz or greater. The sampling rate may be about 9,000 Hz or greater. Sampling The sampling rate may be about 10,000 Hz or greater. The sampling rate may be greater than about 12,500 Hz. The sampling rate may be about 15,000 Hz or greater. The sampling rate may be about 200 Hz to about 10,000 Hz. The sampling rate may be about 500 Hz to about 10,000 Hz. The sampling rate may be about 1,000 Hz to about 10,000 Hz. The sampling rate may be about 2,000 Hz to about 10,000 Hz. The sampling rate may be about 5,000 Hz to about 10,000 Hz. The sampling rate may be about 5,000 Hz to about 15,000 Hz.
[0100]
[0110] The disclosed system detects one of a plurality of wells using light directed from an excitation source. At least a portion of one well may be illuminated. In some cases, at least a portion of each well of the plurality of wells may be illuminated by light directed from an excitation source. In some cases, a signal (e.g., an electrical signal) may be collected from one well of the plurality of wells and transferred to a detector, such as a corresponding detector. In some cases, a signal may be collected from each well of the plurality of wells and transferred to a detector. In some cases, the portion of the well that may be illuminated corresponds to the same portion of the well from which a signal may be collected and transferred to the detector. In some cases, the portion of the well that may be illuminated may be different from the portion of the well from which a signal may be collected. In some cases, the ratio of the portion of the light that may illuminate the well to the portion of the signal that may be collected from the well may be about 1:0.5 to about 1:1.5. In some cases, this ratio may be about 1:1. In some cases, the ratio of the portion of the well that may be illuminated to the portion of the well from which a signal may be collected may be about 1:0.5 to about 1:1.5. In some cases, the ratio may be about 1:0.75 to about 1:1.25. In some cases, the ratio may be about 1:0.9 to about 1.1. In some cases, the ratio may be about 1: 1. In some cases, the ratio may be about 1:0.5, 1:0.55, 1:0.6, 1:0.65, 1:0.7, 1:0.75, 1:0.8, 1:0.85, 1:0.9, 1:0.95, 1:1, 1:1.2, 1:1.3, 1:1.4, or 1:1.5.
[0101]
[0111] The system of the present disclosure includes: The excitation source may include an excitation source for illuminating the light source. In some cases, the excitation source may be at about 10 -5 meters to approximately 10 5 In some cases, the light may be about 10 -4 meters to approximately 10 4 In some cases, light may have wavelengths of about 10 meters. -3 meters to approximately 10 3 In some cases, light may have wavelengths of about 10 meters. -2meters to approximately 10 2 In some cases, light may have wavelengths of about 10 meters. -1 meters to approximately 10 1 In some cases, the light may include wavelengths of about 400 nanometers to about 1000 nanometers. In some cases, the light may include visible light (e.g., light visible to the human eye), ultraviolet light, infrared light, or a combination thereof. In some cases, the light may include wavelengths of about 400 nanometers to about 900 nanometers. In some cases, the light may include wavelengths of about 400 nanometers to about 800 nanometers. In some cases, the light may include wavelengths of about 400 nanometers to about 500 nanometers. In some cases, the light may include wavelengths of about 600 nanometers to about 800 nanometers. In some cases, the light may include wavelengths of about 500 nanometers to about 700 nanometers. In some cases, the light may include wavelengths of about 500 nanometers to about 900 nanometers. In some cases, the light may include wavelengths of about 600 nanometers to about 900 nanometers. In some cases, the light may include wavelengths from about 700 nanometers to about 900 nanometers. In some cases, the light may include wavelengths from about 800 nanometers to about 900 nanometers.
[0102]
[0112] The systems of the present disclosure may include one or more excitation sources. The light intensity provided by the laser is approximately 1 milliwatt per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 1.5 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 2 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 2.5 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 3 milliwatts per square millimeter (mW / mm2 The light intensity provided by the excitation source may be about 3.5 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 4 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 4.5 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 5 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 5.5 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 6 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 6.5 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 7 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 7.5 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 8 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 8.5 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 9 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 9.5 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 10 milliwatts per square millimeter (mW / mm 2 The light intensity provided by the excitation source may be about 2, 2.5, 3, 3.5, 4, 4.5, 5, 5.5, 6, 6.5, 7, 7.5, 8, 8.5, 9, 9.5, or 10 mW / mm2 It may be larger.
[0103]
[0113] The systems of the present disclosure may include a detection assembly, a signal detected by the system, or the like. The signal may provide a signal-to-noise ratio (SNR) of 0.01 to 0.01. In some cases, the detected signal may be a current signal. In some cases, the signal may indicate a change in cell membrane potential or a change in intracellular or extracellular ion concentration. In some cases, the SNR may be greater than a membrane potential change of about 5 / 10 millivolts (mV). In some cases, the SNR may be greater than a membrane potential change of about 10 / 10 mV. In some cases, the SNR may be greater than a membrane potential change of about 15 / 10 mV. In some cases, the SNR may be greater than a membrane potential change of about 20 / 10 mV. In some cases, the SNR may be greater than a membrane potential change of about 25 / 10 mV. In some cases, the SNR may be greater than a membrane potential change of about 30 / 10 mV. In some cases, the SNR may be greater than a membrane potential change of about 35 / 10 mV. In some cases, the SNR may be greater than a membrane potential change of about 40 / 10 mV. In some cases, the SNR may be greater than a cell membrane potential change of about 45 / 10 mV. In some cases, the SNR may be greater than a cell membrane potential change of about 50 / 10 mV.
[0104]
[0114] The disclosed system can provide an excitation source that provides light to multiple wells. The light may be a time-constant light. The light may be a time-varying light, such as a pulsed light. In some cases, the pulsed light may be pulsed at various time intervals. In some cases, the pulsed light may be pulsed at a specific time interval, such as a timed light pulse. The timed light pulse may have a duration of about 200 milliseconds. The timed light pulse may have a duration of about 100 milliseconds. The timed light pulse may have a duration of about 80 milliseconds. The timed light pulse The timed light pulse may be about 60 milliseconds in duration. The timed light pulse may be about 40 milliseconds in duration. The timed light pulse may be about 20 milliseconds in duration. The timed light pulse may be about 10 milliseconds in duration. The timed light pulse may be less than about 200 milliseconds in duration. The timed light pulse may be less than about 100 milliseconds in duration. The timed light pulse may be less than about 80 milliseconds in duration. The timed light pulse may be less than about 60 milliseconds in duration. The timed light pulse may be less than about 40 milliseconds in duration. The timed light pulse may be less than about 20 milliseconds in duration. The timed light pulse may be less than about 10 milliseconds in duration.
[0105]
[0115] The disclosed system is configured to add a sample to one of the multiple wells of the system. A protein or fragment thereof can be provided for contacting a cell capable of expressing the protein. The protein or fragment thereof may have at least about 52%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity to a known protein. For example, the protein or fragment thereof may have at least about 52% sequence identity, about 52% sequence length, or a combination thereof to Chop1 protein. The protein or fragment thereof may have at least about 52%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity, sequence length, or a combination thereof to Chop1 protein. The protein or fragment thereof may have at least about 52%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence homology, sequence length, or combination thereof to Chop2 protein. The protein or fragment thereof may have at least about 52%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence homology, sequence length, or combination thereof to LiGluR.
[0106]
[0116] The light intensity of the excitation source may vary over time. When multiple excitation sources are included, each excitation may include a light intensity that may be the same or different from the other excitation sources. The light intensity of the excitation source may be adjustable, such as adjusted by a controller of the system or a user of the system. The light intensity across multiple wells may be the same, for example, about 5 mW / mm for each of the multiple wells. 2 5mW / mm 2 + / -0.25mW / mm 2 As such, the light intensity across multiple wells may not vary by more than about 5%. The light intensity across multiple wells may not vary by more than about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, or 10%. When the system includes multiple excitation sources, the light intensity across the multiple excitation sources may not vary by more than about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, or 10% between each excitation source.
[0107]
[0117] The light intensity can be adjusted by the controller or the user. Where the intensity may vary over time, the delay or lag in the change in light intensity may be less than about 15 milliseconds (ms). The delay in the change in light intensity of the excitation source may be less than about 10 ms. The delay in the change in light intensity of the excitation source may be less than about 9 ms. The delay in the change in light intensity of the excitation source may be less than about 8 ms. The delay in the change in light intensity of the excitation source may be less than about 7 ms. The delay in the change in light intensity of the excitation source may be less than about 6 ms. The delay in the change in light intensity of the excitation source may be less than about 5 ms. The delay in the change in light intensity of the excitation source may be less than about 4 ms. The delay in the change in light intensity of the excitation source may be less than about 3 ms. The delay in the change in light intensity of the excitation source may be less than about 2 ms. The delay in the change in light intensity of the excitation source may be less than about 1 ms.
[0108]
[0118] The systems of the present disclosure may be configured to accommodate a variety of devices, such as microwell plates or arrays of cuvettes. The well array may be configured to accept an array of wells. The well array may be a microwell plate, such as a commercially available microwell plate or a custom-designed microwell plate. The well array may be formed of glass (such as borosilicate glass), plastic (such as polypropylene, polyethylene, polyethylene terephthalate G, polymethylpentene, etc.), or a combination thereof. The well array may have wells with flat or rounded bottoms. The well array may be a 6-well plate, a 16-well plate, a 32-well plate, a 96-well plate, or a 384-well plate. The well array may include multiple wells. Multiple wells are: 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 55, 60, 65, 70, 75, 80, 85, 90, 95, 100, 105, 110, 115, 120, 125, 130, 135, 140, 145, 150, The plurality of wells may include 155, 160, 165, 170, 175, 180, 185, 190, 195, 200, 210, 220, 230, 240, 250, 260, 270, 280, 290, 300, 310, 320, 330, 340, 350, 360, 370, 380, 390, 400, 410, 420, 430, 440, 450, 460, 470, 480, 490, 500, 550, 600, 650, 700, 750, 800, 850, 900, 950, 1000, or more wells. The plurality of wells may include about 1 to about 20 wells. The plurality of wells may include about 1 to about 100 wells. The plurality of wells may include from about 10 to about 400 wells. The plurality of wells may include from about 50 to about 1000 wells. The plurality of wells may include at least 3 wells. The plurality of wells may include at least 5 wells. The plurality of wells may include at least 8 wells. The plurality of wells may include at least 10 wells.The plurality of wells may include at least 11 wells. The plurality of wells may include at least 15 wells. The plurality of wells may include at least 20 wells. The plurality of wells may include at least 31 wells. The plurality of wells may include at least 95 wells. The plurality of wells may include at least 100 wells. The plurality of wells may include at least 200 wells. The plurality of wells may include at least 383 wells.
[0109]
[0119] The system of the present disclosure may include a plurality of wells, One well of the plurality of wells may be configured to receive a cell. In some cases, one well of the plurality of wells may be configured to receive a plurality of cells. In some cases, the plurality of cells may be the same in each well of the plurality of wells. In some cases, the plurality of cells may be different in each well of the plurality of wells. In some cases, one well of the plurality of wells may contain about 2, 5, 10, 20, 30, 40, 50, 60, 70, 80, 90, 100, 125, 150, 175, 200, 250, 300, 350, 400, 450, 500, 600, 700, 800, 900, 1000, 1500, or 2000 cells.
[0110]
[0120] In some cases, the plurality of cells in the well may range from about 1 cell to about 100 cells. In some cases, the plurality of cells in a well may be about 1 cell to about 200 cells. In some cases, the plurality of cells in a well may be about 1 cell to about 500 cells. In some cases, the plurality of cells in a well may be about 1 cell to about 1,000 cells. In some cases, the plurality of cells in a well may be about 1 cell to about 2,000 cells. In some cases, the plurality of cells in a well may be about 10 cells to about 100 cells. In some cases, the plurality of cells in a well may be about 10 cells to about 500 cells. In some cases, the plurality of cells in a well may be about 500 cells to about The number of cells in a well may be about 1,000 cells. In some cases, the number of cells in a well may be about 500 cells to about 2,000 cells. In some cases, the number of cells in a well may be about 100 cells to about 500 cells.
[0111]
[0121] In some cases, a plurality of cells in one well of the plurality of wells may be at least about 10 cells. In some cases, the plurality of cells in one well of the plurality of wells may be at least about 50 cells. In some cases, the plurality of cells in one well of the plurality of wells may be at least about 100 cells. In some cases, the plurality of cells in one well of the plurality of wells may be at least about 250 cells. In some cases, the plurality of cells in one well of the plurality of wells may be at least about 500 cells. In some cases, the plurality of cells in one well of the plurality of wells may be at least about 750 cells. In some cases, the plurality of cells in one well of the plurality of wells may be at least about 1000 cells. In some cases, the plurality of cells in one well of the plurality of wells may be at least about 2000 cells.
[0112]
[0122] In some cases, a plurality of cells in one well of the plurality of wells may be less than about 10 cells. In some cases, the plurality of cells in one well of the plurality of wells may be less than about 50 cells. In some cases, the plurality of cells in one well of the plurality of wells may be less than about 100 cells. In some cases, the plurality of cells in one well of the plurality of wells may be less than about 250 cells. In some cases, the plurality of cells in one well of the plurality of wells may be less than about 500 cells. In some cases, the plurality of cells in one well of the plurality of wells may be less than about 750 cells. In some cases, the plurality of cells in one well of the plurality of wells may be less than about 1000 cells. In some cases, the plurality of cells in one well of the plurality of wells may be less than about 2000 cells.
[0113]
[0123] The disclosed system includes a light-detectable sensor in one of the wells. The system can detect the presence or absence of activation of a light-detectable sensor. The system can detect the presence or absence in each well of the plurality of wells. The system can be configured to detect the presence or absence by using a detection assembly. The system can detect the presence or absence of a light-detectable sensor in one well of the plurality of wells in about 1 minute or less. The system can detect within about 40 seconds. The system can detect within about 30 seconds. The system can detect within about 20 seconds. The system can detect within about 10 seconds. The system can detect within about 1 second. The system can detect within about 100 milliseconds (milliseconds). The system can detect within about 50 milliseconds. The system can detect within about 10 milliseconds. The system can detect within about 1 millisecond.
[0114]
[0124] The system detects the number of light-detectable sensors in each well of a plurality of wells within approximately one minute. The system can detect the presence or absence of a substance within each well of a plurality of wells within about 30 seconds. The system can detect the presence or absence of a substance within each well of a plurality of wells within about 10 seconds. The system can detect the presence or absence of a substance within each well of a plurality of wells within about 1 second. The system can detect the presence or absence of a substance within each well of a plurality of wells within about 100 milliseconds. The system can detect the presence or absence of a substance within each well of a plurality of wells within about 50 milliseconds. The system can detect the presence or absence of a substance within each well of a plurality of wells within about 10 milliseconds. The system can detect the presence or absence of a substance within each well of a plurality of wells within about 1 millisecond.
[0115]
[0125] The system can measure multiple wells (6 wells, 12 wells) in a time frame of less than approximately 20 seconds. The system may collect one or more signals from each well of a plurality of wells within about 20 seconds, 15 seconds, 10 seconds, 5 seconds, 1 second, 100 milliseconds, 50 milliseconds, 10 milliseconds, 1 millisecond, or less.
[0116]
[0126] The system collects one or more signals from each well of the plurality of wells. The system can collect multiple signals. The system can collect about 2, 3, 4, 5, 6, 7, 8, 9, 10, or more signals from a well. The system can collect at least two signals when the two signals are the same, such as two trains of action potentials. The system can collect at least two signals when the two signals are different, such as a voltage-dependent event and an ion-dependent event. Two or more signals in a well, such as two trains of action potentials, can occur sequentially in time. Two or more signals in a well, such as a voltage-dependent event and an ion-dependent event, can occur substantially in parallel or simultaneously.
[0117] Computer Control System
[0127] The present disclosure also provides a computer programmed to carry out the methods of the present disclosure. A control system is provided. Figure 4 shows a computer system 401 that is programmed or configured to (i) control an excitation source to provide light to multiple wells, (ii) control the direction of light, such as directing light to regions of wells in a microplate, and (iii) control a detection assembly to collect and / or transfer information (such as electrical signals) to a database, memory, or the like. The computer system 401 can coordinate various aspects of the data collection, data analysis, and data storage of the present disclosure, such as (i) controlling the excitation source, (ii) controlling the detection assembly, (iii) controlling the light path or the portion of the well that receives light, (iv) controlling the frequency of collection and / or transfer of information (such as electrical signals), or otherwise. The computer system 401 can be a user's electronic device or a computer system located remotely relative to the electronic device. The electronic device may be a portable electronic device.
[0118]
[0128] The computer system 401 includes a central processing unit (CPU, here referred to as a “processor”). The computer system 401 includes a CPU 405 (also referred to as a "computer processor"), which may be a single-core or multi-core processor, or multiple processors for parallel processing. The computer system 401 also includes memory or memory locations 410 (e.g., random access memory, read-only memory, flash memory), electronic storage 415 (e.g., a hard disk), a communication interface 420 (e.g., a network adapter) for communicating with one or more other systems, and peripherals 425, such as cache, other memory, data storage devices, and / or electronic display adapters. The memory 410, storage 415, interface 420, and peripherals 425 communicate with the CPU 405 via a communication bus (solid lines), such as a motherboard. The storage 415 may be a data storage device (or data repository) for storing data. The computer system 401 may be operably coupled to a computer network ("network") 430 using the communication interface 420. The network 430 may be the Internet, an internet and / or extranet, or an intranet and / or extranet in communication with the internet. In some cases, network 430 is a telecommunications and / or data network. Network 430 may include one or more computer servers, which may enable distributed computing, such as cloud computing. In some cases, with the help of computer system 401, network 430 may implement a peer-to-peer network, which may include computer systems 401, 402, 403, 404, 405, 406, 407, 408, 409, 410, 411, 412, 413, 414, 415, 416, 417, 418, 419, 420, 421, 422, 423, 424, 425, 426, 427, 428, 429, 430, 431, 432, 433, 434, 435, 436, 437, 438, 439, 440, 449, 450, 451, 452, 453, 454, 455, 456, 457, 458, 459, 460, 461, 462, 463, 464, 465, 466, 467, 468, 469, 470, 471, 472, 473, 474, 475, 476, 477, 478, 479, 480, 481, 482, 483, 484, 485, 486, 487, 488, 489, 490, 500, 501, 502, 503 It may be possible for devices coupled to O1 to act as either a client or a server.
[0119]
[0129] The CPU 405 can be implemented as a program or software. The CPU 405 may execute a series of machine-readable instructions. The instructions may be stored in a memory location, such as memory 410. The instructions may be directed to the CPU 405, which may then program or configure the CPU 405 to perform the methods of the present disclosure. Examples of operations performed by the CPU 405 may include fetch, decode, execute, and writeback.
[0120]
[0130] The CPU 405 may be part of a circuit such as an integrated circuit. The circuit may include one or more other components of 01. In some cases, the circuit is an application specific integrated circuit (ASIC).
[0121]
[0131] The storage device 415 stores files such as drivers, libraries, and stored programs. Storage 415 may store user data, such as user preferences and user programs. In some cases, computer system 401 may include one or more additional data storage units external to computer system 401, such as located on a remote server that communicates with computer system 401 via an intranet or the Internet.
[0122]
[0132] The computer system 401 communicates with one or more The computer system 401 may communicate with a remote computer system of a user (e.g., a portable PC, a tablet PC, a smartphone). Examples of remote computer systems include a personal computer (e.g., a portable PC), a slate or tablet PC (e.g., an Apple® iPad®, a Samsung® Galaxy Tab), a phone, a smartphone (e.g., an Apple® iPhone®, an Android-enabled device, a Blackberry®, or a personal digital assistant). A user may access the computer system 401 via the network 430.
[0123]
[0133] The methods described herein may be implemented using a variety of storage devices, such as memory 410 or electronic storage 415. The computer system 401 may be implemented by machine (e.g., a computer processor) executable code stored in electronic storage locations of such computer system 401. Machine-executable or machine-readable code may be provided in the form of software. During use, the code may be executed by the processor 405. In some cases, the code may be retrieved from storage device 415 and stored in memory 410 for easy access by the processor 405. In some circumstances, electronic storage device 415 may be omitted, and machine-executable instructions may be stored in memory 410.
[0124]
[0134] The code may be used in a machine having a processor adapted to execute the code. The code may be provided in a programming language that can be selected to allow the code to be executed in a pre-compiled or compile-time form.
[0125]
[0135] The systems and methods provided herein, such as computer system 401 Aspects of the present technology may be embodied in programming. Various aspects of the technology may be presented as "articles of manufacture" or "products," typically in the form of machine (or processor) executable code and / or associated data carried on or embodied in some type of machine-readable medium. It can be considered an "article of manufacture." The machine-executable code can be stored in electronic storage devices such as memory (e.g., read-only memory, random-access memory, flash memory) or a hard disk. "Storage"-type media can include any or all of the tangible memory of a computer, processor, etc., or associated modules such as various semiconductor memories, tape drives, disk drives, etc., which can provide non-transitory storage for software programming at any time. All or part of the software may be communicated via the Internet or various other telecommunications networks. Such communication may, for example, enable loading of the software from one computer or processor to another, e.g., from an administrative server or host computer to an application server computer platform. Thus, other types of media that can carry software elements include light waves, radio waves, and electromagnetic waves, such as those used across physical interfaces between local devices, via wired and optical terrestrial communications networks, and via various air links. Physical elements that carry such waves, e.g., wired or wireless links, optical links, etc., can also be considered software-bearing media. As used herein, unless limited to non-transitory, tangible "storage" media, terms such as computer or machine "readable medium" refer to any medium that participates in providing instructions to a processor for execution.
[0126]
[0136] Thus, machine-readable media such as computer-executable code may be considered tangible storage media. The tangible transmission media may take many forms, including but not limited to, a medium, a carrier wave medium, or a physical transmission medium. Non-volatile storage media include optical or magnetic disks, such as any storage device of any computer, such as may be used to implement, for example, the databases shown in the figures. Volatile storage media include dynamic memory, such as the main memory of such a computer platform. Tangible transmission media include coaxial cables, such as copper wire and fiber optics, including the wires that comprise a bus within a computer system. Carrier wave transmission media may take the form of electric or electromagnetic signals, or acoustic or light waves such as those generated during radio frequency (RF) and infrared (IR) data communications. Thus, common forms of computer readable media include, for example, a floppy disk, a flexible disk, a hard disk, magnetic tape, any other magnetic medium, a CD-ROM, a DVD or DVD-ROM, any other optical medium, punched card stock, any other physical storage medium with a pattern of holes, RAM, ROM, PROM and EPROM, FLASH-EPROM, any other memory chip or cartridge, a carrier wave carrying data or instructions, a cable or link carrying such a carrier wave, or any other medium from which a computer can read programming code and / or data. Many of these forms of computer readable media may be involved in carrying one or more sequences of one or more instructions to a processor for execution.
[0127]
[0137] The computer system 401 (i) determines the detection of a sensor, such as a photosensitive sensor. The system may include or be in communication with an electronic display 435 that includes a user interface (UI) 440 configured to provide or receive information such as (i) the area percentage of the well or the percentage of cells in the well that emits the sensor, (ii) the intensity of the light source or the type of light source used, or other information. Examples of UIs include, but are not limited to, graphical user interfaces (GUIs) and web-based user interfaces.
[0128]
[0138] The methods and systems of the present disclosure are implemented by one or more algorithms. The algorithm may be implemented by software when executed by the central processing unit 405. For example, the algorithm may (i) compare information acquired by the detection assembly with information stored in the system's database; (ii) determine the optical detection It is possible to check the presence or absence of sensors such as sensors.
[0129] kit
[0139] The kits may include instructions for use and the systems described herein, e.g., detection assemblies. The kit may include a system including a sensor and an illumination assembly. The kit may further include one or more arrays, one or more sensors (e.g., light-detectable sensors), or a combination thereof.
[0130] Example 1: Screening for expression ion channel targets in non-excitable cells
[0140] Intracellular calcium fluorescent indicator Fluo4 and photosensitive actuator Chop2 and added to a plurality of HEK293 cells engineered to express voltage-gated calcium channels. The plurality of HEK293 cells containing the Fluo4 indicator are divided into wells of a microplate. A molecule is added to some of the wells of the microplate. The HEK293 cells in each well are then simultaneously and repeatedly stimulated with a light source having a wavelength of 494 nanometers (nm). The stimulation is provided by an illumination assembly. The cellular response in each well is simultaneously monitored by detecting the emission of the Fluo-4 indicator at a wavelength of 516 nm. A photodiode in the detection assembly detects the fluorescent emission. The magnitude or temporal profile of the fluorescent emission confirms that the molecule acts on one or more transient voltage-gated structures of the calcium ion channel.
[0131] Example 2: Screening for expression ion channel targets in non-excitable cells
[0141] The cell membrane potential indicator BeRST, the photosensitive actuator CHOP2, and the The BeRST indicator is added to multiple HEK293 cells engineered to express the voltage-gated ion channel, sodium channel Nav1.7. Multiple HEK293 cells containing the BeRST indicator are divided into wells of a microplate. Molecules are added to some of the wells of the microplate. The HEK293 cells in each well are then simultaneously stimulated with a light source having a wavelength of 658 nanometers (nm). Pulses of 460 nm light independently activate the actuators, resulting in transient, repetitive activation of the sodium channel Nav1.7. The stimulation is provided by an illumination assembly. The cellular responses in each well are simultaneously monitored by detecting the BeRST indicator's emission at a wavelength of 683 nm. A photodiode in the detection assembly detects the fluorescent emission. The magnitude or temporal profile of the fluorescent emission confirms that the molecule acts on one or more transient voltage-dependent structures of the voltage-gated sodium ion channel.
[0132] Example 3: Pharmacological evaluation of electrically excitable cells - spontaneously active cells
[0142] The voltage-sensitive dye VF2.1.C1 was applied to multiple cardiomyocytes differentiated from iPS cells. Multiple cardiomyocytes containing the VF2.1.C1 indicator dye are divided into wells of a microplate. Compounds are added to some of the wells of the microplate. The cardiomyocytes in each well are then simultaneously stimulated with a light source having a wavelength of 460 nanometers (nm). The stimulation is provided by an illumination assembly. The cellular response in each well is simultaneously monitored by detecting the emission of the VF2.1.C1 indicator dye at a wavelength of 516 nm. A photodiode in the detection assembly detects the fluorescent emission. Submillisecond-scale perturbations in action potential duration or depolarization rate are detected by an automated heuristic algorithm and used to predict potential target tissue toxicity.
[0133] Example 4: Electrically excitable cells - Pharmacological evaluation of optically paced excitable cells
[0143] Multiple cardiomyocytes were differentiated from induced pluripotent stem (IPS) cells and developed into light-responsive actuated The cells are engineered to express the eta protein, Chop2. The voltage-sensitive dye BeRST is added to the cells. The cells, which contain the BeRST indicator and express the light-responsive actuator Chop2, are divided into wells of a microplate. The BeRST indicator is then stimulated simultaneously with a timed pulse of a first pacing light and a timed pulse of a second pacing light. Both the first and second pacings occur at a first wavelength of 460 nm, while a second excitation wavelength of 660 nm is provided to excite the BeRST indicator. The light stimulation is provided by an illumination assembly. The cellular response in each well is simultaneously monitored by detecting the BeRST indicator's emission at a wavelength of 690 nm. A detection assembly detects the fluorescent emission. Perturbations in response to the two different pacing conditions are detected by an automated heuristic algorithm and used to predict potential heart rate-dependent target tissue toxicity.
[0134] Example 5: Safety pharmacology assay on spontaneously beating cardiomyocytes
[0144] ISC-derived cardiomyocytes were cultured for 384 days until spontaneous beating activity was observed. Cells were grown in 384-well microtiter plates. Cells were stained with a voltage-sensitive dye. As shown in Figure 6a, the hERG inhibitor, E4031, was added at various concentrations (400 nM, 100 nM, 25 nM, 6.3 nM, 1.6 nM, and 0 nM) to different wells of a 384-well microtiter plate. Changes in the fluorescence emission of the voltage-sensitive dye were collected simultaneously in all 384 wells over a 20-second period. From the collected data, action potentials were identified using proprietary software, and the action potential duration at 90% repolarization (APD90) was measured and converted to a dose-response curve for the hERG inhibitor, E4031, as shown in Figure 6b.
[0135] Example 6: Dual-wavelength stimulation and monitoring of sodium channel activity
[0145] HEK293 cells express Nav1.7 sodium to regulate the resting membrane potential. The cells were engineered to express a voltage-sensitive fluorescent dye, a photosensitive actuator ion channel, and an auxiliary potassium ion channel. Cell monolayers in microtiter plates were stained with a voltage-sensitive fluorescent dye. As shown in Figure 7, the voltage-sensitive fluorescent dye was excited and the emitted fluorescence was monitored at near-infrared wavelengths, while a pulse of blue light partially depolarized the cell membrane potential, resulting in transient sodium channel activity and action potential voltage traces seen in the fluorescent readout. Voltage traces from patch-clamped cells within the monolayer are shown for comparison.
[0136] Example 7: Simultaneous multi-layer acquisition and automated characterization of cardiomyocyte action potentials using near-infrared voltage-sensing dyes
[0146] Spontaneously beating cardiomyocytes stained with near-infrared voltage-sensitive dye were visualized in a 384-well plate. Cells were grown in a 100-well microtiter plate and continuously illuminated with 660 nm light. As shown in Figures 8a-b, fluorescence emission was recorded for 20 seconds, and the onset (solid vertical line) and end (dotted vertical line) of each action potential were detected using a proprietary algorithm. A decrease in action potential duration at 90% repolarization (APD90) of approximately 353 ± 14 milliseconds (msec) and a decrease in beat duration of approximately 79.8 beats per minute (bpm) were observed in wells containing the tachycardia-inducing drug nifedipine (Adalata®, Procardia®, CAS number 21829-25-4) (Figure 8a), compared to an APD90 of approximately 531 ± 37 msec and approximately 49.8 bpm in the control group (Figure 8b). Two of the 96 simultaneously acquired traces are shown.
[0137] Example 8: Dual-wavelength recording and pacing of cardiomyocyte action potentials
[0147] Cardiomyocytes were transfected with HEK293 cells expressing the light-gated bacterial channel rhodopsin. The cells were co-cultured with engineered HEK293 cells in microtiter plates and stained with near-infrared voltage-sensitive dye. As shown in Figure 9a-b, low-frequency spontaneous action potentials were recorded (Figure 9a), followed by action potential recordings evoked by a train of approximately 460 nanometer (nm) 0.5 Hz pacing pulses (Figure 9b) via electrical coupling between the engineered HEK293 cells and the cardiomyocytes.
[0138] Example 9: Simultaneous multi-layer dual-wavelength stimulation using near-infrared voltage-sensing dyes and sodium channels Activity Record
[0148] Bacterial channels in combination with the human Nav1.7 voltage-gated sodium channel HEK293 cells engineered to express rhodopsin were grown in microtiter plates and stained with a near-infrared voltage-sensitive dye. To stimulate action potentials, wells were sequentially illuminated with approximately 4 Hz, 10-millisecond pulses of approximately 660 nanometer (nm) and approximately 460 nm light (Figure 10a), as shown in Figures 10b-c. Two of the 96 simultaneous fluorescence traces are shown in Figures 10b-c.
[0139]
[0149] While preferred embodiments of the present invention have been shown and described herein, such implementations may Those skilled in the art will appreciate that the embodiments are provided by way of example only. It is not intended that the present invention be limited by the specific examples provided herein. While the present invention has been described with reference to the foregoing specification, the description and illustration of the embodiments herein are not meant to be construed in a limiting sense. Numerous variations, changes, and substitutions will occur to those skilled in the art without departing from the invention. Furthermore, it should be understood that all aspects of the present invention are not limited to the specific depictions, configurations, or relative proportions set forth herein, which depend upon a variety of conditions and variables. It should be understood that various alternatives to the embodiments of the present invention described herein may be used in practicing the present invention. It is therefore contemplated that the present invention encompasses all such alternatives, modifications, variations, or equivalents. It is intended that the following claims define the scope of the invention, and that methods and structures within the scope of these claims and their equivalents be covered thereby.
Claims
1. 1. A system comprising an illumination assembly and a detection assembly, the system comprising: (a) directing light toward a first side of a plurality of wells of an array of wells, each well of the plurality of wells containing a plurality of cells; (b) collecting optical signals from each well of the plurality of wells at least substantially in parallel on a second side of the plurality of wells, the sample being disposed between the first side and the second side; (c) configured to transfer each optical signal at least substantially in parallel to a corresponding detector; a lens configured to focus at least a portion of the optical signal from each well of the plurality of wells onto the corresponding detector, and at least a portion of the optical signal from each well of the plurality of wells is transferred to an independent detector, the corresponding detector comprising a photodiode that converts the optical signal into an electrical signal, the system having a sampling rate of the optical signals across the wells of the array greater than 1000 Hertz (Hz), and the system providing a signal indicative of a change in intracellular potential or a change in intracellular ion concentration from the time change of the converted electrical signal.
2. 10. The system of claim 1, wherein collection and transfer of the optical signal from each well of the plurality of wells occurs simultaneously.
3. 3. The system of claim 1 or 2, wherein the illumination assembly is configured to direct light from an excitation source onto the plurality of wells of an array of wells; each well of the plurality of wells is configured to receive a cell; At least a portion of the light from the excitation source illuminates at least a portion of each well of the plurality of wells to form an at least partially illuminated well.
4. 4. A system according to any one of claims 1 to 3, wherein the detection assembly is configured to collect an optical signal from each well of the plurality of wells along an axis at least substantially parallel to an incident path of the light.
5. 5. The system of claim 1, wherein the detector is an optical detector.
6. 6. The system of claim 1, wherein the optical signal is converted into a current signal by the detector.
7. 7. The system of claim 1, wherein the sampling rate is between 1000 Hz and 12,000 Hz.
8. 8. The system of claim 1, wherein the detection assembly includes signal collection optics, the numerical aperture of the signal collection optics being between 0.2 and 0.
8.
9. 9. A system according to any one of claims 1 to 8, wherein the illumination assembly comprises excitation optics and the detection assembly comprises signal collection optics, and wherein a focal length of the excitation optics on each of the plurality of wells is longer than a focal length of the signal collection optics that collects the optical signal from a corresponding well among the plurality of wells.
10. 10. The system of claim 1, wherein the illumination assembly comprises two or more excitation sources.
11. 11. The system of claim 3, wherein the excitation source of the illumination assembly provides an excitation of 5 milliwatts per square millimeter (mW / mm ) to one or more of the plurality of wells. 2 ) providing a light intensity exceeding that of the
12. 12. The system of claim 1, wherein the photodiode comprises a pin (PIN) photodiode, a pn (PN) photodiode, an avalanche photodiode, a Schottky photodiode, or any combination thereof.
13. 13. The system of claim 1, wherein the photodiode detects fluorescence, phosphorescence, luminescence, or any combination thereof.
14. 14. The system of any one of claims 1 to 13, wherein the plurality of cells comprises cardiomyocytes.
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