Plant Extracts
These extracts can contain a wide range of chemical compounds, including alkaloids, flavonoids, terpenoids, and other bioactive molecules.
Plant Extracts have a long history of use in traditional medicine and are increasingly being studied for their potential therapeutic applications in areas like anti-inflamatory, antimicrobial, and anticancer properties.
Researchers utilize advanced techniques like chromatography and mass spectrometry to identify and characterize the chemical compostion of Plant Extracts, enabling the development of standardiezed and reproducible protocols for their extraction and analysis.
This growing field of study holds promise for the discovery of new natural products with clinically relevant bioactivites.
Most cited protocols related to «Plant Extracts»
The assay employed was based on spectrophotometric methods reported in the literature [12 (link)] with some modifications for use in a microplate reader. The assay was performed in 50 mM Tricine buffer (pH 7.5 with 400 mM NaCl and 10 mM CaCl2). Collagenase from Clostridium histolyticum (ChC – EC.3.4.23.3) was dissolved in buffer for use at an initial concentration of 0.8 units/mL according to the supplier's activity data. The synthetic substrate N-[3-(2-furyl) acryloyl]-Leu-Gly-Pro-Ala (FALGPA) was dissolved in Tricine buffer to 2 mM. Plant extracts were incubated with the enzyme in buffer for 15 minutes before adding substrate to start the reaction. The final reaction mixture (150 μL total volume) contained Tricine buffer, 0.8 mM FALGPA, 0.1 units ChC and 25 μg test extracts. Negative controls were performed with water. Absorbance at 335 nm was measured immediately after adding substrate and then continuously for 20 minutes using a Cary 50 Microplate Reader in Nunc 96 well microtitre plates. EGCG, 250 μM (0.114 mg/mL) was used as a positive control.
Most recents protocols related to «Plant Extracts»
Example 1
a. Materials and Methods
i. Vector Construction
1. Virus-Like Particle
As most broadly neutralizing HPV antibodies are derived from the highly conserved N-terminal region of L2, amino acids 14-122 of HPV16 L2 were used to create HBc VLPs. L2 with flanking linker regions was inserted into the tip of the a-helical spike of an HBc gene copy which was fused to another copy of HBc lacking the L2 insert. This arrangement allows the formation of HBc dimers that contain only a single copy of L2, increasing VLP stability (Peyret et al. 2015). This heterodimer is referred to as HBche-L2. A dicot plant-optimized HPV16 L2 coding sequence was designed based upon the sequence of GenBank Accession No. CAC51368.1 and synthesized in vitro using synthetic oligonucleotides by the method described (Stemmer et al., 1995). The plant-optimized L2 nucleotide sequence encoding residues 1-473 is posted at GenBank Accession No. KC330735. PCR end-tailoring was used to insert Xbal and SpeI sites flanking the L2 aa 14-122 using primers L2-14-Xba-F (SEQ ID NO. 1: CGTCTAGAGTCCGCAACCCAACTTTACAAG) and L2-122-Spe-R (SEQ ID NO. 2: G GGACTAGTTGGGGCACCAGCATC). The SpeI site was fused to a sequence encoding a 6His tag, and the resulting fusion was cloned into a geminiviral replicon vector (Diamos, 2016) to produce pBYe3R2K2Mc-L2(14-122)6H.
The HBche heterodimer VLP system was adapted from Peyret et al (2015). Using the plant optimized HBc gene (Huang et al., 2009), inventors constructed a DNA sequence encoding a dimer comprising HBc aa 1-149, a linker (G2S)5G (SEQ ID NO. 39), HBc aa 1-77, a linker GT(G4S)2 (SEQ ID NO. 40), HPV-16 L2 aa 14-122, a linker (GGS)2GSSGGSGG (SEQ ID NO. 41), and HBc aa 78-176. The dimer sequence was generated using multiple PCR steps including overlap extensions and insertion of BamHI and SpeI restriction sites flanking the L2 aa 14-122, using primers L2-14-Bam-F (SEQ ID NO. 3: CAGGATCCGCAACC CAACTTTACAAGAC) and L2-122-Spe-R (SEQ ID NO. 2). The HBche-L2 coding sequence was inserted into a geminiviral replicon binary vector pBYR2eK2M (
2. Recombinant Immune Complex
The recombinant immune complex (RIC) vector was adapted from Kim et al., (2015). The HPV-16 L2 (aa 14-122) segment was inserted into the BamHI and SpeI sites of the gene encoding humanized mAb 6D8 heavy chain, resulting in 6D8 epitope-tagged L2. The heavy chain fusion was inserted into an expression cassette linked to a 6D8 kappa chain expression cassette, all inserted into a geminiviral replicon binary vector (
ii. Agroinfiltration of Nicotiana benthamiana Leaves
Binary vectors were separately introduced into Agrobacterium tumefaciens EHA105 by electroporation. The resulting strains were verified by restriction digestion or PCR, grown overnight at 30° C., and used to infiltrate leaves of 5- to 6-week-old N. benthamiana maintained at 23-25° C. Briefly, the bacteria were pelleted by centrifugation for 5 minutes at 5,000 g and then resuspended in infiltration buffer (10 mM 2-(N-morpholino)ethanesulfonic acid (MES), pH 5.5 and 10 mM MgSO4) to OD600=0.2, unless otherwise described. The resulting bacterial suspensions were injected by using a syringe without needle into leaves through a small puncture (Huang et al. 2004). Plant tissue was harvested after 5 DPI, or as stated for each experiment. Leaves producing GFP were photographed under UV illumination generated by a B-100AP lamp (UVP, Upland, CA).
iii. Protein Extraction
Total protein extract was obtained by homogenizing agroinfiltrated leaf samples with 1:5 (w:v) ice cold extraction buffer (25 mM sodium phosphate, pH 7.4, 100 mM NaCl, 1 mM EDTA, 0.1% Triton X-100, 10 mg/mL sodium ascorbate, 0.3 mg/mL PMSF) using a Bullet Blender machine (Next Advance, Averill Park, NY) following the manufacturer's instruction. To enhance solubility, homogenized tissue was rotated at room temperature or 4° C. for 30 minutes. The crude plant extract was clarified by centrifugation at 13,000 g for 10 minutes at 4° C. Necrotic leaf tissue has reduced water weight, which can lead to inaccurate measurements based on leaf mass. Therefore, extracts were normalized based on total protein content by Bradford protein assay kit (Bio-Rad) with bovine serum albumin as standard.
iv. SDS-PAGE and Western Blot
Clarified plant protein extract was mixed with sample buffer (50 mM Tris-HCl, pH 6.8, 2% SDS, 10% glycerol, 0.02% bromophenol blue) and separated on 4-15% polyacrylamide gels (Bio-Rad). For reducing conditions, 0.5M DTT was added, and the samples were boiled for 10 minutes prior to loading. Polyacrylamide gels were either transferred to a PVDF membrane or stained with Coomassie stain (Bio-Rad) following the manufacturer's instructions. For L2 detection, the protein transferred membranes were blocked with 5% dry milk in PBST (PBS with 0.05% tween-20) overnight at 4° C. and probed with polyclonal rabbit anti-L2 diluted 1:5000 in 1% PBSTM, followed by goat anti-rabbit horseradish peroxidase conjugate (Sigma). Bound antibody was detected with ECL reagent (Amersham).
v. Immunization of Mice and Sample Collection
All animals were handled in accordance to the Animal Welfare Act and Arizona State University IACUC. Female BALB/C mice, 6-8 weeks old, were immunized subcutaneously with purified plant-expressed L2 (14-122), HBche-L2 VLP, L2 RIC, or PBS mixed 1:1 with Imject® Alum (Thermo Scientific, Rockford, IL). In all treatment groups, the total weight of antigen was set to deliver an equivalent 5 μg of L2. Doses were given on days 0, 21, and 42. Serum collection was done as described (Santi et al. 2008) by submandibular bleed on days 0, 21, 42, and 63.
vi. Antibody Measurements
Mouse antibody titers were measured by ELISA. Bacterially-expressed L2 (amino acids 11-128) was bound to 96-well high-binding polystyrene plates (Corning), and the plates were blocked with 5% nonfat dry milk in PBST. After washing the wells with PBST (PBS with 0.05% Tween 20), the diluted mouse sera were added and incubated. Mouse antibodies were detected by incubation with polyclonal goat anti-mouse IgG-horseradish peroxidase conjugate (Sigma). The plate was developed with TMB substrate (Pierce) and the absorbance was read at 450 nm. Endpoint titers were taken as the reciprocal of the lowest dilution which produced an OD450 reading twice the background. IgG1 and IgG2a antibodies were measured with goat-anti mouse IgG1 or IgG2a horseradish peroxidase conjugate.
vii. Electron Microscopy
Purified samples of HBche or HBche-L2 were initially incubated on 75/300 mesh grids coated with formvar. Following incubation, samples were briefly washed twice with deionized water then negatively stained with 2% aqueous uranyl acetate. Transmission electron microscopy was performed with a Phillips CM-12 microscope, and images were acquired with a Gatan model 791 CCD camera.
viii. Statistical Analysis
The significance of vaccine treatments and virus neutralization was measured by non-parametric Mann-Whitney test using GraphPad prism software. Two stars (**) indicates p values <0.05. Three stars (***) indicates p values <0.001.
b. Design and Expression of HBc VLPs and RIC Displaying HPV16 L2
BeYDV plant expression vectors (
To express L2-containing MC, amino acids 14-122 of HPV16 L2 were fused with linker to the C-terminus of the 6D8 antibody heavy chain and tagged with the 6D8 epitope (Kim et al. 2015). A BeYDV vector (
After rigorous genetic optimization, the N. benthamiana system is capable of producing very high levels of recombinant protein, up to 30-50% of the total soluble plant protein, in 4-5 days (Diamos et al. 2016). Using this system, we produced and purified milligram quantities of fully assembled and potently immunogenic HBc VLPs displaying HPV L2 through a simple one-step purification process (
c. Purification and Characterization of HBche-L2 and L2 RIC
To assess the assembly of HBc-L2 VLP, clarified plant extracts containing either HBche-L2 or HBche were analyzed by sucrose gradient sedimentation. HBche-L2 sedimented largely with HBche, which is known to form VLP, though a small increase in density was observed with HBche-L2, perhaps due to the incorporation of L2 into the virus particle (
L2 RIC was purified from plant tissue by protein G affinity chromatography. By SDS-PAGE, an appropriately sized band was visible >150 kDa that was highly pure (
d. Mouse Immunization with HBche-L2 and L2 RIC
Groups of Balb/c mice (n=8) were immunized, using alum as adjuvant, with three doses each of 5 μg L2 delivered as either L2 alone, HBche-L2 VLP, L2 RIC, or a combination of half VLP and half RIC. VLP and RIC, alone or combined, greatly enhanced antibody titers compared to L2 alone by more than an order of magnitude at all time points tested (
In vitro neutralization of HPV16 pseudovirions showed that the VLP and RIC groups greatly enhanced neutralization compared to L2 alone (
In this study, by displaying amino acids 11-128 on the surface of plant-produced HBc VLPs, L2 antibody titers as high as those seen with L1 vaccines were generated (
Mice immunized with L2 alone had highly variable antibody titers, with titers spanning two orders of magnitude. By contrast, the VLP and VLP/RIC groups had much more homogenous antibody responses, with no animals below an endpoint titer of 1:1,000,000 (
Fc gamma receptors are present on immune cells and strongly impact antibody effector functions such as antibody-dependent cell-mediated cytotoxicity and complement-dependent cytotoxicity (Jefferis 2009). In mice, these interactions are controlled in part by IgG subtypes. IgG1 is associated with a Th2 response and has limited effector functions. By contrast, IgG2a is associated with a Th1 response and more strongly binds complement components (Neuberger and Raj ewsky 1981) and Fc receptors (Radaev 2002), enhancing effector functions and opsonophagocytosis by macrophages (Takai et al. 1994). Immunization with L2 alone was found to produce low levels of IgG2a, however immunization with RIC and VLP produced significant increases in IgG2a titers. VLP-containing groups in particular showed a 3-fold increase in the ratio of IgG2a to IgG1 antibodies (
The glycosylation state of the Fc receptor also plays an important role in antibody function. Advances in glycoengineering have led to the development of transgenic plants with silenced fucosyl- and xylosyl-transferase genes capable of producing recombinant proteins with authentic human N-glycosylation (Strasser et al. 2008). Antibodies produced in this manner have more homogenous glycoforms, resulting in improved interaction with Fc gamma and complement receptors compared to the otherwise identical antibodies produced in mammalian cell culture systems (Zeitlin et al. 2011; Hiatt et al. 2014; Strasser et al. 2014; Marusic et al. 2017). As the known mechanisms by which RIC vaccines increase immunogenicity of an antigen depend in part on Fc and complement receptor binding, HPV L2 RIC were produced in transgenic plants with silenced fucosyl- and xylosyl-transferase. Consistent with these data, we found that L2 RIC strongly enhanced the immunogenicity of L2 (
e. Neutralization of HPV Pseudovirions
Neutralization of papilloma pseudoviruses (HPV 16, 18, and 58) with sera from mice immunized IP with HBc-L2 VLP and L2(11-128) showed neutralization of HPV 16 at titers of 400-1600 and 200-800, respectively (Table 1). More mice IP-immunized with HBc-L2 VLP had antisera that cross-neutralized HPV 18 and HPV 58 pseudoviruses, compared with mice immunized with L2(11-128). Anti-HBc-L2 VLP sera neutralized HPV 18 at titers of 400 and HPV 58 at titers ranging from 400-800 (Table 1), while anti-L2(11-128) sera neutralized HPV 18 at a titer of 200 and HPV 58 at a titer of 400 (Table 1). None of the sera from intranasal-immunized mice demonstrated neutralizing activity, consistent with lower anti-L2 titers for intranasal than for intraperitoneal immunized mice.
Example 1
As a general procedure, shikonin or a composition comprising shikonin or a derivative thereof is formulated in capsules, optionally in combination with lecithin (phospholipids, comprising primarily phosphatidylcholine) (e.g., at a shikonin-to-lecithin weight ratio of about 1:1). The shikonin or derivative thereof may be substantially pure (from a synthetic or natural source) or a part of an extract of a plant, such as Lithospermum erythrorhizon, Arnebia euchroma or another member of the borage family.
Using the above general procedure, an extract of purple gromwell (Lithospermum erythrorhizon) root (zicao) was prepared using an appropriate solvent, followed by spray drying and sieving, to obtain a purple powder. 175 mg of the powdered purple gromwell extract, containing about 30% shikonin and/or derivatives thereof, was placed with an equal weight of lecithin (Lipoid® PS P 20×, obtained from Lipoid GmbH) in Capsugel® delayed release (DR) capsules.
As an alternative to capsules, a syrup was prepared comprising lecithin and shikonin (95% purity) at a 5:1 lecithin:shikonin ratio, 44% alcohol as solvent, and honey.
Based on literature reports, toxicity of shikonin is not expected at dosages of less than 8 grams per day.
EXAMPLE 9
Pulverize 50 kg of dry mulberry leaves of the species Morus alba and extract under reflux once with 10 folds of 30% ethanol of the weight of the raw material. Filter the extract, which was then put through a column filled with Amberlite IR-120 (H+) type cationic resin. The volume of the column was 1/13 of the liquid. Elute the column with water (1.5 folds of the column volume) followed by 0.7N ammonia water (7 folds of the column volume) with a flow rate of 2 folds of the column volume per hour. Collect the ammonia water eluent with a pH of 9-11. Condense to a given volume, remove ammonium and adjust to pH 7. Put the eluent through a column filled with an AB-8 macroporous resin. The volume of the column was 1/15 of the eluent and the flow rate was the column volume per hour. The collected fluid was then dried under vacuum and the dried product pulverized to pass through an 80 mesh sieve. 0.5 kg of a pale yellow powder was obtained which contained 4.2% DNJ, 22% total imino sugars and 46% total amino acids.
EXAMPLE 6
Pulverize 5 kg of dry mulberry leaves of the species Morus alba var. multicaulis L. and extract under reflux 3 times with 11 folds of 25% ethanol to the weight of the raw material. Filter the combined extract, which was then put through a column filled with a cationic exchange resin type 001 X7. The volume of the column was 1/13 of the liquid. Elute the column with water (2 folds of the column volume) followed by 0.5 N ammonia water (5 folds of the column volume) with a flow rate of 1.5 folds of the column volume per hour. Collect the ammonia water eluent with a pH of 9-11 . Condense to a given volume, remove ammonium and adjust to pH 7. Put the eluent through a column filled with a macropous resin HP20. The volume of the column was 1/10 of the eluent liquid and the flow rate 4 folds of the column volume per hour. The collected fluid was then dried under vacuum and the dried product pulverized to pass through an 80 mesh sieve. 48 g of a pale yellow powder was obtained, which contained 2.1% DNJ, 8.3% total imino sugars and 65% total amino acids.
EXAMPLE 8
Pulverize 5 kg of dry mulberry leaves of the species Morus australis Poir. and extract under reflux 3 times with 8 folds of 80% ethanol of the weight of the raw material. Filter the combined extract, which was then put through a column filled with Amberlite IR-120 (H+) type cationic resin. The volume of the column was 1/10 of the liquid. Elute the column with water (1.5 folds of the column volume) followed by 0.7 N ammonia water (5 folds of the column volume) at a flow rate of 1.5 folds of the column volume per hour. Collect the ammonia water eluent with a pH 9-11 . Condense to a given volume, remove ammonium and adjust to pH 7. Put the eluent liquid through a column filled with an AB-8 macroporous resin. The volume of the column was 1/13 of the eluent liquid and the flow rate, 2 folds of the column volume per hour. The collected fluid was then dried under vacuum and the dried product pulverized to pass through an 80 mesh sieve. 42 g of a pale yellow powder was obtained which contained 1.4% DNJ, 5.2% total imino sugars and 68% total amino acids.
Top products related to «Plant Extracts»
More about "Plant Extracts"
Researchers often utilize advanced analytical techniques like HPLC, GC-MS, and LC-MS to identify and quantify the unique chemical compositions of plant extracts, enabling the development of standardized and reproducible extraction protocols.
This knowledge empowers the discovery of new natural products with clinically relevant bioactivities in areas such as anti-inflammatory, antimicrobial, antioxidant, and anticancer properties.
Plant extracts are increasingly being studied for their therapeutic potential, buiding upon a long history of traditional medicinal uses.
Whatman No. 1 filter paper, DMSO, and compounds like Gallic acid, DPPH, and Trolox are commonly employed in the analysis and evaluation of plant extracts.
FBS and Synergy HT are also utilized in relevant bioassays and cytotoxicity assessments.
The field of plant extract research holds great promise for the development of natural, plant-based solutions to address various health and wellness needs.