This application claims the priority benefit of Taiwan application serial no. 110107226, filed on Mar. 2, 2021. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
The present invention relates to a sperm sorting apparatus and a sperm sorting method.
Infertility has become one of the common problems in modern society. Various artificial fertilization methods have been developed for addressing such problem. For instance, current artificial fertilization methods include intrauterine insemination (IUI), in vitro fertilization (IVF) and intracytoplasmic sperm injection (ICSI) and so forth. These methods require high motility sperms for each test. Hence, a method for sorting out high motility sperms is important in the field of artificial fertilization. Currently, finding a method for sorting out great amount of the high motility sperms from a sperm sample is quite challenging.
In an aspect of the present invention, a sperm sorting apparatus is provided. The sperm sorting apparatus comprises: a medium chamber, configured to contain a medium solution; a waste chamber, disposed aside the medium chamber, and configured to contain a residual solution obtained after sorting, wherein the residual solution includes low motility sperms and/or dead sperms; and a sorting channel, extending between and communicated with the medium chamber and the waste chamber along a first direction, and configured to be inserted with a sperm sample, such that sperms in the sperm sample are sorted in corresponding to a medium solution flow entering the sorting channel from the medium chamber, wherein the sorting channel has a first portion and a second portion, the first portion is closer to the medium chamber than the second portion, a width of the first portion measured along a second direction is greater than a critical dimension, the second direction is intersected with the first direction, and the critical dimension ranges from 200 μm to 400 μm.
In some embodiments, sperm sorting apparatus further comprises parallel micro-channels, extending along the second direction and disposed between the medium chamber and the sorting channel.
In some embodiments, the first portions of the sorting channel converges toward the medium chamber, a width of at least a section of the first portion measured along the second direction is greater than the critical dimension.
In some embodiments, the sorting channel is communicated to outside of the sperm sorting apparatus through an input/output hole.
In some embodiments, the input/output hole is communicated with the first portion of the sorting channel.
In some embodiments, the second portion of the sorting channel converges toward the waste chamber.
In some embodiments, an end portion of the sorting channel communicated with the waste chamber is a narrow channel, and a width of the sorting channel measured along the second direction is at its minimum at the narrow channel.
In another aspect of the present invention, a sperm sorting method is provided. The sperm sorting method comprises: providing a sperm sorting apparatus, comprising a medium chamber, a waste chamber and a sorting channel extending between and communicated with the medium chamber and the waste chamber along a first direction, a width of at least a section of the sorting channel measured along a second direction is greater than a critical dimension, and the critical dimension ranges from 200 μm to 400 μm; inserting a medium solution to the medium chamber and the waste chamber, till liquid levels in the medium chamber, the sorting channel and the waste chamber are balanced; inserting a sperm sample into the sorting channel; additionally inserting a medium solution into the medium chamber, such that the medium solution in the medium chamber flows into the sorting channel to form a medium solution flow, wherein sperms in the sperm sample are sorted in corresponding to the medium solution flow; and extracting a sorted solution from the sorting channel.
In some embodiments, the sperm sorting method further comprises: rinsing the medium chamber, the sorting channel and the waste chamber with an additional medium solution before the step of inserting the medium solution to the medium chamber and the waste chamber.
In some embodiments, the sperm sorting method further comprises: intermittently repeating the step of additionally inserting a medium solution into the medium chamber before the step of extracting the sorted solution from the sorting channel.
The sperm sorting apparatus according to embodiments of the present invention utilizes both of a behavioral tendency that the high motility sperms swim against the medium solution flow and a behavioral tendency that the high motility sperms gather across the inner surface of the sorting channel, thus a great amount of high motility sperms can be extracted by using the sperm sorting apparatus. As a result, in addition to be applicable for the ICSI artificial fertilization method, the sperm sorting apparatus 10 may be further applicable for the WF artificial fertilization method. During a sperm sorting process, the high motility sperms at least mostly stay in the sorting channel since being inserted into the sorting channel, while the low motility and/or dead sperms are carried to the waste chamber along the medium solution flow. Subsequently, the sorted solution in the sorting channel may be extracted from the sorting channel. In other words, a moving distance of the high motility sperms is short, thus the sorting can be performed in a short time, and energy consumption of the high motility sperms can be low. Moreover, since the sperm sample is directly inserted into the sorting channel, substantially all of the sperms in the sperm sample can be ensured to be sorted, thus a great sorting efficiency can be promised.
To make the aforementioned more comprehensible, several embodiments accompanied with drawings are described in detail as follows.
The accompanying drawings are included to provide a further understanding of the disclosure, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments of the disclosure and, together with the description, serve to explain the principles of the disclosure.
Referring to
In some embodiments, the sperm sorting apparatus 10 is formed by attaching a top substrate SB1 with a bottom substrate SB2. In these embodiments, the bottom substrate SB2 may be a flat plate, and the top substrate SB1 may have openings and a recess at its bottom surface. For instance, the openings of the top substrate SB1 may include an opening P100 for forming the medium chamber 100 after the top substrate SB1 is attached with the bottom substrate SB2, and may include an opening P110 for forming the waste chamber 110 after the top substrate SB1 is attached with the bottom substrate SB2. In addition, the recess of the top substrate SB1 may include a recess R120 for forming the sorting channel 120 after the top substrate SB1 is attached with the bottom substrate SB2. A portion of the bottom substrate SB2 overlapped with the opening P100 may define a bottom surface of the medium chamber 100, and a sidewall of the opening P100 may define a sidewall of the medium chamber 100. A portion of the bottom substrate SB2 overlapped with the opening P110 may define a bottom surface of the waste chamber 110, and a sidewall of the opening P110 may define a sidewall of the waste chamber 110. In addition, a portion of the bottom substrate SB2 overlapped with the recess R120 may define a bottom surface of the sorting channel 120, and a surface of the recess R120 (i.e., the recessed surface at the bottom surface of the top substrate SB1) may define a top surface and a sidewall of the sorting channel 120.
The sperm sorting apparatus 10 may further include an input/output hole H120 communicated with the sorting channel 120. The sperm sample may be inserted into the sorting channel 120 from outside of the sperm sorting apparatus 10 through the input/output hole H120, and the high motility sperms from the sperm sample may be extracted from the sorting channel 120 through the input/output hole H110. In those embodiments where the sperm sorting apparatus 10 is formed by attaching the top substrate SB1 with the bottom substrate SB2, the input/output hole H110 penetrates through a portion of the top substrate SB1 having the recess R120, so as to communicate with the sorting channel 120 defined by the recess R120 of the top substrate SB1 and the portion of the bottom substrate SB2 overlapped with the recess R120.
Referring to
Referring to
In some embodiments, the input/output hole H120 is communicated with the first portion 120a of the sorting channel 120, where the high motility sperms swim against the medium solution flow and gather. Accordingly, more of the high motility sperms can be extracted from the input/output hole H120. However, the input/output hole H120 should be laterally spaced apart from the medium chamber 100 by an appropriate distance, in order to prevent the sperms in the sperm sample inserted into the sorting channel 120 through the input/output hole H120 from flowing back to the medium chamber 100. For instance, the input/output hole H120 may be close to a side of the first portion 120a that is away from the medium chamber 100.
In some embodiments, the sorting channel 120 further has a third portion 120c between the first portion 120a and the second portion 120b. A width W120c of the third portion 120c may be substantially equal to a maximum value of the width W120a of the first portion 120a and a maximum value of the width W120b of the second portion 120b. For instance, the width W120c of the third portion 120c of the sorting channel 120 may range from 28 mm to 30 mm. Further, a length L120c of the third portion 120c of the sorting channel 120 may range from 9 mm to 12 mm.
Referring to
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On the other hand, if a width of a segment of the sorting channel 120 through which the sperm sample flows is less than the critical dimension, the high motility sperms HM may otherwise gather at corners of such segment (e.g., a corner defined by a top surface and a sidewall of such segment and a corner defined by the sidewall and a bottom surface of such segment), and may not spread across the top surface, the sidewall and the bottom surface of such segment. Therefore, fewer high motility sperms HM may gather in such segment. If a width of the sorting channel 120 is mostly or completely less than the critical dimension, then an amount of the extracted high motility sperms HM may be significantly limited.
In some embodiments, a height Duo of the sorting channel 120 may be about 100 μm. Moreover, portions of the sorting channel 120 (including the first portion 120a, the second portion 120b and the third portion 120c) may have substantially identical height (i.e., the height D120). In other words, both of the top surface and the bottom surface of the sorting channel 120 may be substantially flat surfaces.
The sperm sorting apparatus 10 as described utilizes both of a behavioral tendency that the high motility sperms swim against the medium solution flow and a behavioral tendency that the high motility sperms gather across the inner surface of the sorting channel 120, thus a great amount of high motility sperms can be extracted by using the sperm sorting apparatus 10. As a result, in addition to be applicable for the ICSI artificial fertilization method, the sperm sorting apparatus 10 may be further applicable for the WF artificial fertilization method. For instance, by inserting a 100 μl sperm sample with sperm concentration about 12 M/ml into the sperm sorting apparatus 10, about 186,000 high motility sperms can be extracted. Further, by such extraction, a content of high motility sperms in the sperm sample is significantly raised from about 43.1% to about 91.3%. As another example, by inserting a 100 μl sperm sample with sperm concentration about 20.2 M/ml into the sperm sorting apparatus 10, about 156,000 high motility sperms can be extracted. In addition, by such extraction, a content of high motility sperms in the sperm sample is significantly raised from about 39.6% to about 92.3%.
Referring to
At step S402, more medium solution is inserted into the medium chamber 100 and the waste chamber 110. In some embodiments, the medium chamber 100 and the waste chamber 110 are respectively inserted with 500 μl medium solution in the current step. Liquid levels in the medium chamber 100, the sorting channel 120 and the waste chamber 110 may become balanced after a period of time.
At step S404, a sperm sample is inserted into the sorting channel 120. The sperm sample may be inserted into the sorting channel 120 through the input/output hole H120. In some embodiments, the sperm sample is a solution including sperm specimen and medium solution. In addition, in some embodiments, 100 μl of the sperm sample may be inserted into the sorting channel 120.
At step S406, additional medium solution is inserted into the medium chamber 100. Such additional medium solution may flow to the sorting channel 120 after the insertion, and form a medium solution flow in the sorting channel 120. In corresponding to the medium solution flow, the high motility sperms in the sorting channel 120 may exhibit the behavioral tendencies of swimming against the medium solution flow and gathering across the inner surface of the sorting channel 120. In some embodiments, the step of inserting additional medium solution into the medium chamber 100 is intermittently performed multiple times. For instance, 120 μl of medium solution is inserted into the medium chamber 100 for every 2 minutes in a total time of 10 minutes.
At step S408, a sorted solution is extracted from the sorting channel 120. A pipette may be used for extracting the sorted solution from the sorting channel 120 through the input/output hole H120. The sorted solution includes the high motility sperms and the medium solution, and may include a few low motility and/or dead sperms. In some embodiments, the sorted solution of about 65 μl may be extracted from the sorting channel 120.
Up to here, the sperm sorting process according to some embodiments of the present invention has been completed. As described above, the high motility sperms at least mostly stay in the sorting channel 120 since being inserted into the sorting channel 120, while the low motility and/or dead sperms are carried to the waste chamber 110 along the medium solution flow. Subsequently, the sorted solution in the sorting channel 120 may be extracted from the sorting channel 120. In other words, a moving distance of the high motility sperms is short, thus the sorting can be performed in a short time, and energy consumption of the high motility sperms can be low. Moreover, since the sperm sample is directly inserted into the sorting channel 120, substantially all of the sperms in the sperm sample can be ensured to be sorted, thus a great sorting efficiency can be promised.
It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the disclosure covers modifications and variations provided that they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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110107226 | Mar 2021 | TW | national |