The present invention relates to a multi-well plate, and more particularly, to a multi-well plate for imaging small animals, which is designed so that a well is not shadowed at the edge thereof to be suitable for imaging of small animals.
Imaging techniques that capture small animals, such as Caenorhabditis elegans (C. elegans) or zebrafish (fish), to identify the movement thereof have been utilized in various studies. Generally, in order to image small animals, a method is used that places small animals in a well having a certain space, captures the well, in which the small animals are placed, at regular time intervals from above using a camera, and then uses the captured image with a program to identify the movement of the small animals by finding the center coordinates thereof and observing the positions thereof over time.
Examples of the well used to image small animals include a square grid well, a well having a round hole, and the like. However, using such a general well may not often perform smooth imaging of small animals because the small animals are hidden by the shadow from the edge of the well when placed thereon.
As illustrated in
Therefore, the present invention has been made in view of the above problems, and it is an object of the present invention to provide a multi-well plate for imaging small animals, which is capable of accurately recognizing positions of small animals by preventing a well from being shadowed at an edge boundary thereof during imaging of small animals.
In accordance with the present invention, the above and other objects can be accomplished by the provision of a multi-well plate that includes a plurality of wells each in the form of a groove formed on a plate body to store small animals, wherein each of the wells is gently slanted at a boundary with the plate body to form a groove in order to prevent the well from being shadowed at the boundary with the plate body when the well is captured from above by a camera and then imaged.
The well may be in the form of an inverted bell-shaped curved surface having a slope, which is gentle at the boundary with the plate body at first, gradually increases, and is then gentle again at the bottom thereof.
The bell-shaped curved surface may be in the form of a graph of a fuzzy logic function represented by the following Equation:
(where a, b, and c are constant values representing curved surfaces in the graph).
The fuzzy logic function may have a constant value of b = (4 to 8) and a = (5 to 8).
The well may have a curved surface in the form of an inverted fuzzy logic function graph, the curved surface being formed such that the lower bottom of the well has a length in the range of 30% to 80% of the length of the open upper portion thereof when small aquatic animals are imaged in a liquid phase.
The bell-shaped curved surface may be in the form of a mathematical function graph of any one of a Gaussian function, a hyperbolic secant function, a Cauchy distribution probability density function, a bump function, and a raised cosine distribution function.
The plate body and the well may be made of a transparent resin or glass material.
The above and other objects, features and other advantages of the present invention will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings, in which:
Hereinafter, exemplary embodiments of the present invention will be described in detail with reference to the accompanying drawings.
As illustrated in
In order to prevent each of the wells 120 formed in the multi-well plate 100 from being shadowed at the edge thereof while the well 120 is captured from above by a camera for image processing, the boundary between the plate body 110 and the well 120 is gently formed. Accordingly, even if a small animal is placed on the edge of the well 120, the well 120 is not shadowed at the edge boundary thereof during image processing. Therefore, the positions of small animals can be accurately identified.
Although the multi-well plate 100 is made of a transparent resin or glass material in the embodiment of the present invention, the multi-well plate 100 may be made of various materials such as opaque resin or opaque glass as long as it can be captured and recognized by the camera.
As illustrated in
As illustrated in
In the embodiment of the present invention, a mathematical function in the form of an inverted bell is used as an ideal curved design of the well 120. That is, the ideal curved surface of the well 120 has characteristics similar to the mathematical function graph in the form of an inverted bell. The present invention designs the curved surface of the well 120 using the mathematical function in the form of a bell.
The following Equation 1 represents a fuzzy logic function, which is the mathematical function in the form of a bell used for the curve design of the well 120 in the present invention:
where a, b, and c are constants representing curved surfaces in the graph.
Referring to the graphs illustrated in
In
Meanwhile, in addition to the fuzzy logic function, it is possible to form a curved surface of the well 120 through another mathematical function graph in the form of a bell.
The following Equation 2 represents a Gaussian function used for the curve design of the well 120:
where a, b, and c are constants representing curved surfaces in the graph.
In addition, various mathematical functions having a bell-shaped function graph may be applied to the well. For example, the well may use a hyperbolic secant function, a Cauchy distribution probability density function, a bump function, a raised cosine distribution function or a function of similar series, other arithmetic functions, and the like.
The following Equation 3 represents a hyperbolic secant function.
The following Equation 4 represents a Cauchy distribution probability density function.
The following Equation 5 represents a bump function.
The following Equation 6 represents a raised cosine distribution function or a function of a similar series.
The following Equation 7 represents an arithmetic function.
In the well 120 having a curved surface in the form of a bell in the mathematical function graph as described above, even if a small animal is located at the edge of the well 120, the well is not shadowed at the edge boundary thereof. Therefore, it is possible to accurately identify the positions of small animals.
As illustrated in
As such, by forming the well 120 formed in the multi-well plate 100 to have an inverted bell-shaped curved surface in the present invention, the well is not shadowed at the edge boundary thereof during image processing of small animals stored in the well 120, thereby making it possible to accurately recognize small animals.
Although the well 120 formed in the multi-well plate 100 has been described as having a curved side surface and upper and lower portions in the form of a circular groove in the above embodiment, the well may also be manufactured to have various types of grooves. For example, the well 120 may take the form of a square groove having square upper and lower portions, may take the form of a groove having a square upper portion and a circular lower portion, or may take the form of a groove having a circular upper portion and a square lower portion. In this case, the well 120 has a curved side surface as illustrated in the function graphs in the form of a bell in Equations 1 to 7.
As is apparent from the above description, the multi-well plate according to the present invention can prevent the well from being shadowed on the boundary surface of the edge thereof so that imaging is smoothly performed even if a small animal is located at the edge of the well, thereby accurately identifying the positions of small animals. In addition, the multi-well plate according to the present invention can be manufactured in various sizes. Therefore, the multi-well plate can be utilized in various ways by creating the plate for each size of small animals.
The present invention is not limited to the above-mentioned embodiments, and it will be apparent to those skilled in the art that various modifications and variations may be made without departing from the spirit and scope of the invention as defined in the appended claims.