The present disclosure relates to the field of centrifuge rotors. More particularly, the present disclosure relates to a compact centrifuge rotor design arranged to reduce width, volume, and weight and capable of effectively separating biological fluid samples.
Accurate analysis of a blood sample obtained from a subject requires that the plasma and red blood cells (RBCs) of the blood sample are separated from the time of collection to analysis. Mixing of the red blood cells and plasma increases lysis of the red blood cells (i.e., hemolysis), thereby rendering RBC analysis of the blood sample inaccurate and possibly ineffective. Accordingly, effective separation of the blood sample upon collection is imperative. Centrifuges have been used for several hundred years to separate components in a sample based on the density of the components. Centrifuges for separating biological samples such as blood are known in the art. Currently, there are two primary types of centrifuges on the market, one of which has a fixed angle rotor (typically less than 45 degrees), and the other of which has a swing bucket rotor (at approximately 90 degrees when spinning at full speed). While the fixed angle rotor is compact, the resulting separation from a 45 degree tube angle renders an increase in the risk of red blood cells leaking into the separated serum. A swing bucket rotor can provide effective blood separation; however, both the design of the swing bucket rotor and the power requirement to produce the 90 degree rotation, requires a larger sized rotor for use in a high powered centrifuge, all of which results in higher cost and could not be easily transported.
It is desirable to provide a compact centrifuge rotor for use in a compact, portable centrifuge for effectively separating biological (e.g., blood) samples.
In one embodiment, a centrifuge and tube assembly includes a centrifuge body and a centrifuge rotor that rotates with respect to the centrifuge body about a rotation axis. The centrifuge rotor includes a rotor body and a plurality of tube retainers. The tube retainers are configured to receive a plurality of tubes, with each of the plurality of tubes having a tube length. The plurality of tubes are positioned side-by-side and overlap at the rotation axis. The centrifuge rotor having tube retainers with sample tubes positioned therein, has an overall width that is less than twice the length of the sample tube.
Aspects of embodiments of the present invention also include a kit for remote collection of a blood sample, wherein the kit comprises a compact centrifuge rotor as disclosed herein for use with a lightweight mini centrifuge. In some embodiments, the kit includes the compact centrifuge rotor and at least two sample tubes. In other embodiments, the kit includes the compact centrifuge rotor, at least two sample tubes, and a mini portable centrifuge.
In the accompanying drawings, structures are illustrated that, together with the Detailed Description provided below, describe exemplary embodiments of the claimed invention. Like elements are identified with the same reference numerals. It should be understood that elements shown as a single component may be replaced with multiple components, and elements shown as multiple components may be replaced with a single component. The drawings are not to scale and the proportion of certain elements may be exaggerated for the purpose of illustration.
Centrifuge rotors of the present disclosure provide separation of a sample using a compact, easy-to-use, portable centrifuge assembly. The presently disclosed centrifuge rotors (tube retainers) hold the sample tubes in a configuration within the centrifuge that occupies minimal space (e.g., width or diameter), thereby allowing for the overall centrifuge assembly to be compact in size.
Collection of a blood sample to be analyzed that is collected at a remote location (i.e. not at a clinic) requires processing (separation) soon after it is collected. For example, the collected sample requires good separation using a centrifuge rotor that will effectively hold the sample tubes at an angle (e.g., 90 degrees) relative to a vertical rotational axis, wherein the centrifuge rotor is fabricated from a lightweight material and is minimized in size (e.g., width) such that the width of the centrifuge rotor when the samples tubes are inserted in the tube retainers is less than two times the length of a sample tube. Accordingly, the centrifuge rotor is minimized for size to hold at least two sample tubes, and the centrifuge rotor with the sample tubes therein are used in a small sized centrifuge. With an effective and minimized centrifuge rotor, samples tubes along with the centrifuge rotor can be easily transported (e.g., by U.S. mail or courier) to a subject at any location away from a clinic for blood collection and effective separation. Additionally, a kit for remote blood collection and separation, according to embodiments of the present invention, comprises at least two sample tubes and a centrifuge rotor as disclosed herein for holding the centrifuge rotor. In further embodiments, the kit comprises at least two sample tubes, a centrifuge rotor, and a minimized, lightweight centrifuge. A lightweight mini centrifuge according to the present disclosure includes, for example, the MC-700 from Abcbio™. A lightweight mini centrifuge for use with the centrifuge rotor according to embodiments of the present invention, may have a weight of about 0.10 kilogram (kg) to about 2.0 kg. The lighter weight allows for the centrifuge to be transported (e.g., mailed) with the centrifuge rotor. For example, the lightweight mini centrifuge may have a weight of about 0.10 kg to about 1.0 kg or about 0.20 kg to about 1.0 kg. In other exemplary embodiments, the weight of the centrifuge is about 0.20 kg up to about 0.80 kg. A centrifuge for use with the presently disclosed centrifuge rotors may have a speed up to 7000 rotations per minute (r/min). A suitable lightweight mini centrifuge is capable of sufficiently separating a sample using a centrifuge rotor as disclosed herein in
As shown in
The motor includes a motor shaft that rotates centrifuge rotor 104 about a rotation axis 108 when the motor is operating. Centrifuge rotor 104 includes rotor body 106 and tube retainer 110. In the illustrated embodiment, the rotor body 106 is integral with the tube retainer 110. Alternatively, the rotor body may be a separate component that is fastened to the tube retainer. Rotor body 106 is perpendicular to rotation axis 108.
Tube retainer 110 includes first opening 112 and second opening 114 configured to hold a tube at angle 120 from rotation axis 108, as can be seen in
First retainer 116 is inserted into first opening 112. Second retainer 118 is inserted into second opening 114. First retainer 116 and second retainer 118 include a plurality of grips to secure a tube inserted into first opening 112 and second opening 114, respectively. The first and second retainers 116, 118 may be constructed of an elastomeric material. Tube 200A and tube 200B are inserted into first retainer 116 and second retainer 118 in the manner shown in
In some embodiments, the openings of the tube retainer include a corresponding structure, to ensure that users insert the tube in the correct direction. Furthermore, the taper of the transition portion can assist users with properly securing the tube to the tub retainer by a friction fit, without the need for turning or twisting the tube.
Tube 200 has a length T. As shown in
Furthermore, the type and amount of material utilized to construct the centrifuge rotor can affect the overall weight. As shown in
According to embodiments of the present invention, a compact centrifuge rotor having two tube retainers 310 has a width in a range from about 2.0 cm to about 5.0 cm. For example, the width of the centrifuge rotor having two tube retainers has a width in a range from 2.0 cm to 4.5 cm, 2.0 cm to 4.0 cm, 2.0 cm to 3.5 cm, 2.0 cm to 3.0 cm, or 2.0 cm to 2.5 cm. The centrifuge rotor having two tube retainers may have a width in a range from 2.5 to 5.0 cm, 3.0 cm to 5.0 cm, 3.5 cm to 5.0 cm, 4.0 cm to 5.0 cm, or 4.5 cm to 5.0 cm. In other embodiments of the present invention, the width of the centrifuge rotor having two tube retainers has a width in a range from 2.5 cm to 3.5 cm, 2.6 cm to 3.4 cm, 2.7 cm to 3.3 cm, 2.8 cm to 3.2 cm, 2.8 cm to 3.1 cm, 2.8 cm to 3.0 cm, or 2.8 cm to 2.9 cm.
The centrifuge rotor 304 having two tube retainers 310, holds two or more sample tubes. For example, the centrifuge rotor 304 holds two sample tubes. The sample tubes have a length T of about 2.5 cm to 5.5 cm, 3.0 cm to 5.0 cm, 3.0 cm to 4.5 cm, 3.0 cm to 4.0 cm, or 3.0 cm to 3.5 cm. In other embodiments, sample tubes have a length T of about 3.5 cm to 5.5 cm, 4.0 to 5.5 cm, 4.5 cm to 5.5 cm, or 5.0 cm to 5.5 cm. In still other embodiments, the sample tubes have a length T of about 4.0 cm to 5.0 cm, 4.1 cm to 4.9 cm, 4.2 cm to 4.8 cm, 4.3 cm to 4.7 cm, 4.4 cm to 4.6 cm, or 4.4 cm to 4.5 cm.
As shown in
The motor comprises a motor shaft that rotates centrifuge rotor 304 about rotation axis 308 when the motor is operating. Centrifuge rotor 304 includes rotor body 306 and tube retainer 310. Rotor body 306 is perpendicular to rotation axis 308. Rotor body 106 and tube retainer 110 can be manufactured utilizing 3D printing, injection molding or CNC with materials, including but not limited to, plastic, light-weight metal, or wood-based materials. In exemplary embodiments, the centrifuge rotor is made of an elastomeric material (e.g., hard plastic, acrylonitrile butadiene styrene (ABS), or polylactic acid (PLA).
Tube retainer 310 comprises first opening 312 and second opening 314. Tube 200A and tube 200B are shown inserted into first retainer 316 and second retainer 318, respectively in
As can be seen in
In an alternative embodiment, the tube retainer may hold the tubes at an angle other than 90 degrees with respect to the axis of rotation. For example, the tube retainer may hold the tubes at an angle between 36 degrees to 90 degrees without departing from the broad principals disclosed herein. In exemplary embodiments, the tube retainers hold the tubes at a 90 degree angle.
In this example, the side-by-side positioning of the tubes allows for the material used for the first retainer and the second retainer to be reduced. First retainer 316 and second retainer 318 include at least one grip 320 and may include a plurality of grips 320. The grip(s) 320 is/are positioned at the second side of the first opening and second opening. For example, a plurality of grips 320 are positioned radially around first opening 312 and second opening 314 and taper inwards, thereby securing an inserted tube. Furthermore, the inward taper of the plurality of grips 320 assists in preventing users from inserting the tubes in the wrong direction. The length of the grips 320 may range from 0.2 cm to 1.2 cm, 0.3 cm to 1.1 cm, 0.4 cm to 1.0 cm, 0.5 cm to 1.0 cm, 0.4 cm to 1.0 cm, 0.5 cm to 1.0 cm, 0.6 cm to 1.0 cm. 0.7 cm to 1.0 cm, 0.8 cm to 1.0 cm, or 0.8 cm to 0.9 cm. In exemplary embodiments, the length of the grips range from 0.7 cm to 0.9 cm.
Tube retainer 606 comprises first opening 608 and second opening 610. Tube 200A and tube 200B are shown inserted into first opening 608 and second opening 610, respectively. As shown in
Tube retainer 706 comprises first opening 708 and second opening 710. Tube 200A and tube 200B are shown inserted into first opening 708 and second opening 710, respectively. As shown in
With reference to
Embodiments of the present invention also include kits comprising a centrifuge rotor as disclosed herein having two sample tube retainers and two sample tubes. The kit may be easily transported for delivery by vehicle and/or U.S. mail or courier for remote sample collection. The kit may also include a compact centrifuge for use after the collection of the blood sample. In an exemplary embodiment, a compact centrifuge for use with the disclosed centrifuge rotor includes the Mini Centrifuge. Model MC-700 manufactured by Ai Bi Sheng Biochemistry Technology.
As used in this specification and the appended claims, and unless otherwise specified, the terms “about” and “approximately,” when used in connection with various terms such as temperatures, doses, amounts, or weight percent of ingredients of a composition or a dosage form, mean e.g. a temperature, dose, amount, or weight percent that is recognized by those of ordinary skill in the art to provide an effect equivalent to that obtained from the specified temperature dose, amount, or weight percent. Specifically, the terms “about” and “approximately,” when used in this context, contemplate a temperature, dose, amount, or weight percent, etc. within 15%, within 10%, within 5%, within 4%, within 3%, within 2%, within 1%, or within 0.5% of the specified temperature, dose, amount, or weight percent, etc.
All publications and patent applications cited in this specification are herein incorporated by reference as if each individual publication or patent application were specifically and individually indicated to be incorporated by reference. While the claimed subject matter has been described in terms of various embodiments, the skilled artisan will appreciate that various modifications, substitutions, omissions, and changes may be made without departing from the spirit thereof. Accordingly, it is intended that the scope of the subject matter limited solely by the scope of the following claims, including equivalents thereof.
The present application claims the benefit of U.S. Provisional Application 63/389,821, filed on Jul. 15, 2022, which is incorporated herein by reference in its entirety.
Number | Date | Country | |
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63389821 | Jul 2022 | US |