Microalgae culturing method by using paper based culture apparatus

11001800 · 2021-05-11

Assignee

Inventors

Cpc classification

International classification

Abstract

A microalgae culturing method by using a paper-based culture apparatus, includes: 1) designing the shape of a culture apparatus as a rectangle with circles distributed in its middle; 2) spraying and printing wax on a piece of filter paper; 3) heating such that the wax penetrates through the filter paper to obtain a paper culture apparatus, where a surface of the filter paper on which the wax is sprayed and printed is called a surface A while the other surface thereof is called a surface B; and 4) dropping a first agar aqueous solution onto the circles on the surface B of the paper culture apparatus obtained in the step 3), and dropping a second agar aqueous solution added with microalgae onto the surface A of the paper culture apparatus obtained in the step 3).

Claims

1. A method of preparing a paper-based culture apparatus for culturing microalgae thereon, comprising: 1) designing a shape of a culture apparatus as a rectangle with circles (1) distributed in its middle; 2) printing wax on a piece of filter paper according to the design in the step 1) by a wax spray printer, wherein the wax is printed on a part (2) of the rectangle other than the circles; 3) heating such that the wax penetrates through the filter paper to obtain a paper culture apparatus, wherein a surface of the filter paper on which the wax is sprayed and printed is called a surface A while the other surface thereof is called a surface B; 4) culturing microalgae: dropping a first agar aqueous solution onto the circles on the surface B of the paper culture apparatus obtained in the step 3), and dropping a second agar aqueous solution added with microalgae onto the circles on the surface A of the paper culture apparatus obtained in the step 3); and 5) immersing the surface B of the apparatus obtained in the step 4) into a glass culture dish containing a BG-11 culture solution for culture; wherein the first agar aqueous solution is prepared by the following method: weighing 0.8 g to 1.5 g of agar, adding water to 100 ml, mixing uniformly, and heating to dissolve; and the second agar aqueous solution is prepared by the following method: weighing 0.1 g to 0.5 g of agar, adding water to 100 ml, mixing uniformly, and heating to dissolve.

2. The method according to claim 1, wherein the number of circles on the culture apparatus ranges from 6 to 96.

3. The method according to claim 1, wherein the filter paper is a piece of qualitative filter paper or quantitative filter paper.

4. The method according to claim 1, wherein the condition for culture in the step (4) is as follows: irradiating at the temperature ranges from 20° C. to 35° C. for 4 to 8 days.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

(1) The accompanying drawings illustrate one or more embodiments of the present invention and, together with the written description, serve to explain the principles of the invention. Wherever possible, the same reference numbers are used throughout the drawings to refer to the same or like elements of an embodiment.

(2) FIG. 1 is a diagram of a culture apparatus with 24 circles;

(3) FIG. 2 is a schematic diagram of culturing microalgae by a paper culture apparatus;

(4) FIG. 3 shows the results of culturing microalgae in the paper culture apparatus on the 0.sup.th day and the 5.sup.th day; and

(5) FIG. 4 shows the influence of a single salt on the growth of microalgae.

DETAILED DESCRIPTION OF THE PRESENT INVENTION

(6) In order to make the technical solutions and features of the present invention clearer, the present invention will be further described below with reference to the accompanying drawings by specific implementations. The specific embodiments described herein are merely for explaining the present invention rather than limiting the protection scope of the present invention.

(7) In the present invention, the wax spray printer will not be limited. The used wax spray printer is selected from the groups consisting of: Xerox ColorQube 8580, Xerox ColorQube 8700, Xerox ColorQube 8880 or Xerox ColorQube 8900. Xerox ColorQube 8700 is used in various embodiments of the present invention.

(8) The microalgae (Desmodesmus brasiliensis) was purchased from the Aquatic Algae Seed Library of the Chinese Academy of Sciences in October 2015.

(9) The term “BG-11” is used herein generically refers to algae culture medium with following components (in 1.0 liter medium):

(10) NaNO.sub.3 1.5 g, K.sub.2HPO.sub.4 0.04 g, MgSO.sub.4.7H.sub.2O 0.075 g, CaCl.sub.2.2H.sub.2O 0.036 g, citric acid 0.006 g, ferric ammonium citrate 0.006 g, EDTA (disodium salt) 0.001 g, Na.sub.2CO.sub.3 0.02 g, H.sub.3BO.sub.3 2.86 g, MnCl.sub.2.4H.sub.2O 1.81 g, ZnSO.sub.4.7H.sub.2O 0.222 g, NaMoO.sub.4.2H.sub.2O 0.39 g, CuSO.sub.4.5H.sub.2O 0.079 g, Co(NO.sub.3).sub.2.6H.sub.2O 49.4 mg.

(11) The term gel” used herein refers to a solid material generated by cooling down an aqueous solution.

(12) Desmodesmus brasiliensis is an example of microalgae in the present invention, but the microalgae will not be limited in the present invention. Experiments show that other kinds of microalgae can also be cultured by the apparatus of the present invention.

Embodiment 1

(13) A microalgae culturing method by using a paper-based culture apparatus is provided. As shown in FIG. 1 and FIG. 2, the method includes the following steps.

(14) 1) The shape of a culture apparatus is designed on a computer, wherein the shape of the culture apparatus is a rectangle with 24 circles 1 distributed in its middle, and the circles each have a diameter of 5.0 mm.

(15) 2) Wax is sprayed and printed on a piece of filter paper according to the design in the step 1) by a wax spray printer, wherein the wax is printed on a part 2 of the rectangle other than the circles.

(16) 3) The wax-printed filter paper is put in a heating plate and then heated at the temperature of 140° C. for 3 min such that the wax penetrates through the filter paper to form a hydrophobic region and a hydrophilic region is formed at the circles, so that a paper culture apparatus is obtained. A surface of the filter paper on which the wax is sprayed and printed is called a surface A, while the other surface thereof is called a surface B.

(17) 4) Culture of the microalgae (Desmodesmus brasiliensis): 20 μL of a first agar aqueous solution is dropped onto the circles on the surface B of the paper culture apparatus obtained in the step 3), and 10 μL of a second agar aqueous solution added with microalgae is dropped onto the circles on the surface A of the paper culture apparatus obtained in the step 3); wherein the second agar aqueous solution added with microalgae is obtained by mixing the microalgae solution having the optical density (hereinafter referred to as OD, with maximum light absorption wavelength of 680 nm) of 4.2 cultured in the BG-11 culture solution with the second agar aqueous solution at a volume ratio of 1:4.

(18) 5) The surface B of the apparatus obtained in the step 4) is immersed into a 90 mm glass culture dish containing 10 mL of the BG-11 culture solution and then irradiated at the temperature of 25° C. under an irradiation intensity of 2000 lx for 5 days for culturing, and the microalgae is harvested (the paper culture apparatus with 24 circles is taken out and dried), wherein the obtained OD is greater than 8.0, as shown in FIG. 3.

(19) The first agar aqueous solution is prepared by the following method: weighing 1.0 g of agar, adding water to 100 mL, mixing uniformly, and heating to dissolve.

(20) The second agar aqueous solution is prepared by the following method: weighing 3.0 g of agar, adding water to 100 mL, mixing uniformly, and heating to dissolve.

(21) The microalgae is very high in density and adhered onto the agar gel, and the microalgae is harvested without going through centrifugation, flocculation or the like. The method saves cost for harvesting, and prevents the pollution to the water body by any flocculating agent. Meanwhile, since the microalgae only exist in the agar gel, the culture solution can be reused.

(22) Each circle in the culture apparatus is equivalent to a conical flask in the conventional conical flask culture method. Therefore, the paper culture apparatus with 24 circles is equivalent to 24 conical flasks. Consequently, the method of the present invention can greatly save the culture space and material consumption.

Embodiment 2

(23) A microalgae culturing method by using a paper-based culture apparatus is provided. The method includes the following steps.

(24) 1) The shape of a culture apparatus is designed on a computer, wherein the shape of the culture apparatus is a rectangle with 6 circles distributed in its middle, and the circles each have a diameter of 7.8 mm.

(25) 2) Wax is sprayed and printed on a piece of filter paper according to the design in the step 1) by a wax spray printer, wherein the wax is printed on a part of the rectangle other than the circles.

(26) 3) The wax-printed filter paper is put in a heating plate and then heated at the temperature of 120° C. for 5 min such that the wax penetrates through the filter paper to form a hydrophobic region and a hydrophilic region is formed at the circles, so that a paper culture apparatus is obtained. A surface of the filter paper on which the wax is sprayed and printed is called a surface A, while the other surface thereof is called a surface B.

(27) 4) Culture of the microalgae (Desmodesmus brasiliensis): 15 μL of a first agar aqueous solution is dropped onto the circles on the surface B of the paper culture apparatus obtained in the step 3), and 15 μL of a second agar aqueous solution added with microalgae is dropped onto the circles on the surface A of the paper culture apparatus obtained in the step 3); wherein the second agar aqueous solution added with microalgae is obtained by mixing the microalgae solution (OD of 4.2) cultured in the BG-11 culture solution with the second agar aqueous solution at a volume ratio of 1:4.

(28) 5) The surface B of the apparatus obtained in the step 4) is immersed into a 90 mm glass culture dish containing 10 mL of the BG-11 culture solution and then irradiated at the temperature of 20° C. under an irradiation intensity of 2000 lx for 8 days for culture, and the microalgae is harvested (the paper culture apparatus with 6 circles is taken out and dried), wherein the obtained OD is greater than 8.0.

(29) The first agar aqueous solution is prepared by the following method: weighing 0.8 g of agar, adding water to 100 mL, mixing uniformly, and heating to dissolve.

(30) The second agar aqueous solution is prepared by the following method: weighing 0.1 g of agar, adding water to 100 mL, mixing uniformly, and heating to dissolve.

Embodiment 3

(31) A microalgae culturing method by using a paper-based culture apparatus is provided. The method includes the following steps.

(32) 1) The shape of a culture apparatus is designed on a computer, wherein the shape of the culture apparatus is a rectangle with 96 circles distributed in its middle, and the circles each have a diameter of 5.0 mm.

(33) 2) Wax is sprayed and printed on a piece of filter paper according to the design in the step 1) by a wax spray printer, wherein the wax is printed on a part of the rectangle other than the circles.

(34) 3) The wax-printed filter paper is put in a heating plate and then heated at the temperature of 150° C. for 0.5 min such that the wax penetrates through the filter paper to form a hydrophobic region and a hydrophilic region is formed at the circles, so that a paper culture apparatus is obtained. A surface of the filter paper on which the wax is sprayed and printed is called a surface A, while the other surface thereof is called a surface B.

(35) 4) Culture of the microalgae (Desmodesmus brasiliensis): 15 μL of a first agar aqueous solution is dropped onto the circles on the surface B of the paper culture apparatus obtained in the step 3), and 15 μL of a second agar aqueous solution added with microalgae is dropped onto the circles on the surface A of the paper culture apparatus obtained in the step 3); wherein the second agar aqueous solution added with microalgae is obtained by mixing the microalgae solution (OD of 4.2) cultured in the BG-11 culture solution with the second agar aqueous solution at a volume ratio of 1:4.

(36) 5) The surface B of the apparatus obtained in the step 4) is immersed into a 90 mm glass culture dish containing 10 mL of the BG-11 culture solution and then irradiated at the temperature of 35° C. under an irradiation intensity of 2000 lx for 4 days for culture, and the microalgae is harvested (the paper culture apparatus with 96 circles is taken out and dried), where the obtained OD is greater than 8.0.

(37) The first agar aqueous solution is prepared by the following method: weighing 1.5 g of agar, adding water to 100 mL, mixing uniformly, and heating to dissolve.

(38) The second agar aqueous solution is prepared by the following method: weighing 0.5 g of agar, adding water to 100 mL, mixing uniformly, and heating to dissolve.

Embodiment 4

(39) Single-Salt Concentration Test

(40) The steps 1), 2) and 3) in this embodiment are the same as the steps 1), 2) and 3) in Embodiment 1.

(41) 4) Culture of the microalgae (Desmodesmus brasiliensis): 20 μL of a first agar aqueous solution is dropped onto the circles on the surface B of the paper culture apparatus obtained in the step 3); the microalgae solution cultured in the BG-11 culture solution is centrifuged to remove the culture solution, and the microalgae is suspended in ultrapure water to obtain a microalgae solution having an OD of 4.0; the microalgae solution is mixed with a second agar aqueous solution at a volume ratio of 1:4; 10 μL of the mixed solution is dropped onto the circles on the surface A of the paper culture apparatus obtained in the step 3); and, a salt aqueous solution is dropped onto the coagulated microalgae gel, wherein the volume of the dropped salt aqueous solution is 4 μL.

(42) Salt Solutions:

(43) the concentration of the K.sub.2HPO.sub.4 solution is 1.0 g/L;

(44) the concentration of the NaNO.sub.3 solution is 37.5 g/L;

(45) the concentration of the Na.sub.2CO.sub.3 solution is 0.5 g/L;

(46) the concentration of the CaCl.sub.2.H.sub.2O solution is 0.9 g/L;

(47) the concentration of the MgSO.sub.4.7H.sub.2O solution is 1.875 g/L.

(48) Positive control: the above five salts with the same concentrations as above.

(49) Negative control: water.

(50) 5) The surface B of the apparatus obtained in the step 4) is immersed into a 90 mm glass culture dish containing 10 mL of the BG-11 culture solution and then irradiated at the temperature of 25° C. under an irradiation intensity of 2000 lx for 5 days for culture, and the microalgae is harvested (the paper culture apparatus is taken out and dried), where the obtained OD is greater than 8.0.

(51) The first agar aqueous solution is prepared by the following method: weighing 1.0 g of agar, adding water to 100 mL, mixing uniformly, and heating to dissolve.

(52) The second agar aqueous solution is prepared by the following method: weighing 0.3 g of agar, adding water to 100 mL, mixing uniformly, and heating to dissolve.

(53) The results of microalgae culture are shown in FIG. 4. By comparing the three main nutrients (i.e., the P source, the N source and the C source), the microalgae added with NaNO.sub.3 grows fastest, so the N source is a necessary nutrient for the growth of the microalgae; the microalgae added with Na.sub.2CO.sub.3 grows faster in the early state but grows slowly in the later stage, possibly because the C source is consumed faster and the addition of the single P source does not promote the growth of the microalgae. By comparing the two trace elements Ca and Mg, the growth rate of the microalgae added with CaCl.sub.2 is slower than that of the negative control, possibly because excessive single Ca ions inhibit the growth of the microalgae or promote the oil accumulation; and, the growth rate of the microalgae added with MgSO.sub.4.7H.sub.2O is also slower than that of the negative control, possibly the addition of Mg results of the accumulation of chlorophyll and thus inhibits the growth of the microalgae. Since the five salts are added in the positive control, the growth rate is fastest.

(54) Experiments show that the volume ratio of the microalgae to the second agar aqueous solution in various embodiments may also be 1:5, 1:6, 1:7 or the like.

(55) The foregoing description of the exemplary embodiments of the present invention has been presented only for the purposes of illustration and description and is not intended to be exhaustive or to limit the invention to the precise forms disclosed. Many modifications and variations are possible in light of the above teaching.

(56) The embodiments were chosen and described in order to explain the principles of the invention and their practical application so as to activate others skilled in the art to utilize the invention and various embodiments and with various modifications as are suited to the particular use contemplated. Alternative embodiments will become apparent to those skilled in the art to which the present invention pertains without departing from its spirit and scope. Accordingly, the scope of the present invention is defined by the appended claims rather than the foregoing description and the exemplary embodiments described therein.