EP4346998A1 - Compositions and methods for treating with a combination of alternating electric fields and trastuzumab - Google Patents
Compositions and methods for treating with a combination of alternating electric fields and trastuzumabInfo
- Publication number
- EP4346998A1 EP4346998A1 EP22744509.5A EP22744509A EP4346998A1 EP 4346998 A1 EP4346998 A1 EP 4346998A1 EP 22744509 A EP22744509 A EP 22744509A EP 4346998 A1 EP4346998 A1 EP 4346998A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- trastuzumab
- subject
- target site
- alternating electric
- electric field
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61N—ELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
- A61N1/00—Electrotherapy; Circuits therefor
- A61N1/18—Applying electric currents by contact electrodes
- A61N1/32—Applying electric currents by contact electrodes alternating or intermittent currents
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61N—ELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
- A61N1/00—Electrotherapy; Circuits therefor
- A61N1/18—Applying electric currents by contact electrodes
- A61N1/32—Applying electric currents by contact electrodes alternating or intermittent currents
- A61N1/36—Applying electric currents by contact electrodes alternating or intermittent currents for stimulation
- A61N1/36002—Cancer treatment, e.g. tumour
Definitions
- HER2 gene in various breast cancers which tends to modulate various cell processes including cell survival, proliferation, angiogenesis, invasion and metastasis.
- a humanized monoclonal anti- ERBB2 antibody known as Trastuzumab (Herceptin) has been discovered which significantly improves clinical outcome for early and advanced HER2 -positive breast cancer.
- Trastuzumab affects HER2 by inhibiting its dimerization and hence affecting the growth signals which eventually shuts down the HER 2 receptor gene’s expression.
- This drug also targets the phosphatidylinositol 3-kinase (PI3K)/AKT/mTOR pathway and RAS/RAF/MEK/MAP kinase (MAPK) pathways.
- PI3K phosphatidylinositol 3-kinase
- MAPK MAP kinase
- ADCC antibody-dependent cellular cytotoxicity
- Tumor Treating Fields is the therapy comprising of alternating electromagnetic field employed with low-intensity electrical fields to suppress cancer cell proliferation in the body.
- This therapy targets to induce an electric field inside the human body to suppress the proliferation and invasion of cancerous cells.
- This treatment induces apoptosis and hence shows an ability to annihilate the cancerous cells.
- FDA has granted its approval for the application of TTFields to treat patients with recurrent glioblastoma multiforme, or GBM. This technique is found to increase the life expectancy of the patients. In the case of newly diagnosed GBM, this technique can be coupled with temozolomide preceding the surgery
- NCN National Comprehensive Cancer Network
- TTF trastuzumab
- trastuzumab combined antitumor effects on HER2 -positive breast cancer representative cell lines alongside a tumor xenograft model was studied.
- the results showed that the TTF therapy can enhance significantly the growth inhibition induce by trastuzumab.
- Disclosed are methods of treating a subject in need thereof comprising applying an alternating electric field, at a frequency for a period of time, to a target site of the subject in need thereof; and administering trastuzumab to the target site of the subject in need thereof.
- Disclosed are methods of increasing accumulation of trastuzumabat a target site of a subject in need thereof comprising applying an alternating electric field, at a frequency for a period of time, to the target site of the subject in need thereof; and administering trastuzumabto the target site of the subject in need thereof, wherein the accumulation of trastuzumabincreases at the target site compared to administering trastuzumab at the target site without applying an alternating electric field.
- Disclosed are methods of inhibiting cancer cell proliferation at a target site of a subject in need thereof comprising applying an alternating electric field, at a frequency for a period of time, to the target site of the subject in need thereof; and administering trastuzumab to the target site of the subject in need thereof, wherein cancer cell proliferation is inhibited.
- FIGs. 1A-1B depict the effect of trastuzumab-treatment on the viability of HER2- positive cell.
- FIG. 1A TRZ inhibited HER2 -positive cell viability in a dose-dependent manner.
- FIG. IB Cell viability was evaluated using MTT assay for Jimtl and BT474 cells treated with the specified amounts of TRZ; * p ⁇ 0.05.
- FIGs. 2A-2C depict effect of trastuzumab-treatment with TTF on the viability of HER2-positive cell.
- FIG. 2A Jimtl cells were treated in dimethyl sulfoxide (DMSO, vehicle), TRZ (5 pg/ml), TTF (1.5 V/cm), combination for 48 hours and the morphological changes were monitored under phase -contrast microscopy (Magnification X 400).
- FIG. 2B The cell viability was ascertained by trypan blue exclusion assay.
- FIGs. 3A-3C depict anti-trastuzumab-resistant tumor effects of TTF in a BT474-cell line human breast cancer xenograft model.
- FIG. 3A Nude mice bearing BT474R cells as xenografts were treated using control (saline; “CTL”), trastuzumab (“TRZ”), TTF, or combination of trastuzumab and TTF (“TTF+TRZ”).
- FIG. 3B Treatment effects on tumor volume.
- FIGs. 4A-4C depict that combination treatment induces cell apoptosis in trastuzumab-resistant HER2 -positive cell line.
- FIG. 4A Jimtl cells were treated with DMSO, TRZ (5 pg/ml), TTF, or combination for 48 hours. Immunoblotting (or western blotting) was performed on cell lysates (30 pg) with antibodies against pHER2, HER2, Cleaved PARP, Bcl-2, and b-actin.
- FIG. 4C TUNEL-positive cells were stained and imaged with 10X objective lenses using In cell analyzer. Apoptotic cells are shown in light grey.
- FIG. 5 depicts effects of TTF on the growth factor receptor 2 of human epidermal and downstream signaling pathways.
- pAKT, pERK, and pHER2 expressions in xenografts were examined using immunohistochemistry. * p ⁇ 0.05, ** p ⁇ 0.01.
- FIG. 6 depicts that TTF increases the penetration of trastuzumab.
- Fluorescent images were obtained with lOx objective lenses, using In cell analyzer. The channels are as follow: DAPI for nuclei (shown in blue), Alexa 488-TRZ (shown in green) and Rhodamine lectin to detect blood vessel (shown in red).
- the penetration of TRZ from the tumor vessel was plotted with line profiling by intensity measurement from the vessel in various ROI from peripheral and central regions in each tumor. Additionally, the area under the curve was calculated from three tumors with 10 sections in each tumor in two groups. * p ⁇ 0.05.
- each of the combinations A-E, A-F, B-D, B-E, B-F, C-D, C-E, and C-F are specifically contemplated and should be considered disclosed from disclosure of A, B, and C; D, E, and F; and the example combination A-D.
- any subset or combination of these is also specifically contemplated and disclosed.
- the sub-group of A-E, B-F, and C- E are specifically contemplated and should be considered disclosed from disclosure of A, B, and C; D, E, and F; and the example combination A-D.
- This concept applies to all aspects of this application including, but not limited to, steps in methods of making and using the disclosed compositions.
- steps in methods of making and using the disclosed compositions are if there are a variety of additional steps that can be performed it is understood that each of these additional steps can be performed with any specific embodiment or combination of embodiments of the disclosed methods, and that each such combination is specifically contemplated and should be considered disclosed.
- a “target site” is a specific site or location within or present on a subject or patient.
- a “target site” can refer to, but is not limited to a cell (e.g. a cancer cell), population of cells, organ, tissue, or a tumor.
- the phrase “target cell” can be used to refer to target site, wherein the target site is a cell.
- a “target cell” can be a cancer cell.
- organs that can be target sites include, but are not limited to, abdominal organs (e.g. stomach, intestine) or breast,.
- a cell or population of cells that can be target site or target cell include, but are not limited to, breast tissue cells or abdominal cells.
- a “target site” can be a tumor target site.
- a “tumor target site” is a site or location within or present on a subject or patient that comprises or is adjacent to one or more cancer cells, previously comprised one or more tumor cells, or is suspected of comprising one or more tumor cells.
- a tumor target site can refer to a site or location within or present on a subject or patient that is prone to metastases.
- a target site or tumor target site can refer to a site or location of a resection of a primary tumor within or present on a subject or patient.
- a target site or tumor target site can refer to a site or location adjacent to a resection of a primary tumor within or present on a subject or patient.
- an “alternating electric field” or “alternating electric fields” refers to a very-low-intensity, directional, intermediate-frequency alternating electrical fields delivered to a subject, a sample obtained from a subject or to a specific location within a subject or patient (e.g. a target site such as a cell).
- the alternating electrical field can be in a single direction or multiple directional.
- alternating electric fields can be delivered through two pairs of transducer arrays that generate perpendicular fields within the target site.
- one pair of electrodes is located to the left and right (LR) of the target site, and the other pair of electrodes is located anterior and posterior (AP) to the target site. Cycling the field between these two directions (i.e., LR and AP) ensures that a maximal range of cell orientations is targeted.
- TTFields have been established as an anti mitotic cancer treatment modality because they interfere with proper micro-tubule assembly during metaphase and eventually destroy the cells during telophase, cytokinesis, or subsequent interphase.
- TTFields target solid tumors and is described in U.S. Pat. No. 7,565,205, which is incorporated herein by reference in its entirety for its teaching of TTFields [0024] In-vivo and in-vitro studies show that the efficacy of TTFields therapy increases as the intensity of the electrical field increases.
- Array placement optimization may be performed by “rule of thumb” (e.g., placing the arrays on the subject as close to the target site or target cell as possible), measurements describing the geometry of the patient’s body, target site dimensions, and/or target site or cell location. Measurements used as input may be derived from imaging data.
- Imaging data is intended to include any type of visual data, such as for example, single-photon emission computed tomography (SPECT) image data, x-ray computed tomography (x-ray CT) data, magnetic resonance imaging (MRI) data, positron emission tomography (PET) data, data that can be captured by an optical instrument (e.g., a photographic camera, a charge -coupled device (CCD) camera, an infrared camera, etc.), and the like.
- image data may include 3D data obtained from or generated by a 3D scanner (e.g., point cloud data). Optimization can rely on an understanding of how the electrical field distributes within the target site or target cell as a function of the positions of the array and, in some aspects, take account for variations in the electrical property distributions within the heads of different patients.
- the term “subject” refers to the target of administration, e.g. an animal.
- the subject of the disclosed methods can be a vertebrate, such as a mammal.
- the subject can be a human.
- the term does not denote a particular age or sex.
- Subject can be used interchangeably with “individual” or “patient.”
- the subject of administration can mean the recipient of the alternating electrical field.
- the subject of administration can be a subject with early and advanced HER2 -positive breast cancer.
- treat is meant to administer or apply a therapeutic, such as alternating electric fields and a vector, to a subject, such as a human or other mammal (for example, an animal model), that has breast or stomach cancer or has an increased susceptibility for developing breast or stomach cancer, in order to prevent or delay a worsening of the effects of the disease or infection, or to partially or fully reverse the effects of breast or stomach cancer.
- a subject having breast or stomach cancer can comprise delivering a therapeutic to a cell in the subject.
- prevent is meant to minimize or decrease the chance that a subject develops breast or stomach cancer.
- administering refers to any method of providing trastuzumab to a target site or subject.
- Such methods include, but are not limited to: oral administration, transdermal administration, administration by inhalation, nasal administration, topical administration, intravaginal administration, ophthalmic administration, intraaural administration, intracerebral administration, rectal administration, sublingual administration, buccal administration, and parenteral administration, including injectable such as intravenous administration, intra-arterial administration, intramuscular administration, and subcutaneous administration.
- Administration can be continuous or intermittent.
- a preparation can be administered therapeutically; that is, administered to treat breast or stomach cancer.
- a preparation can be administered prophylactically; that is, administered for prevention of breast or stomach cancer.
- the skilled person can determine an efficacious dose, an efficacious schedule, or an efficacious route of administration so as to treat a subject.
- administering comprises exposing or applying.
- exposing a target site or subject to alternating electrical fields or applying alternating electrical fields to a target site or subject means administering alternating electrical fields to the target site or subject.
- a "therapeutically effective amount” is an amount of a composition, or trastuzumab, that provides a therapeutic benefit to an individual or subject.
- a therapeutically effective amount of trastuzumab is an amount that treats, alleviates, ameliorates, relieves, alleviates symptoms of, prevents, delays onset of, inhibits progression of, reduces severity of, and/or reduces incidence of breast or stomach cancer.
- a therapeutically effective amount of trastuzumab will result in an improvement to, or prevents or slows the worsening of, one or more indicators or symptoms of breast or stomach cancer, such as those described herein.
- "treating" a subject with breast or stomach cancer includes administering a therapeutically effective amount of trastuzumab.
- Ranges may be expressed herein as from “about” one particular value, and/or to "about” another particular value. When such a range is expressed, also specifically contemplated and considered disclosed is the range from the one particular value and/or to the other particular value unless the context specifically indicates otherwise. Similarly, when values are expressed as approximations, by use of the antecedent “about,” it will be understood that the particular value forms another, specifically contemplated embodiment that should be considered disclosed unless the context specifically indicates otherwise. It will be further understood that the endpoints of each of the ranges are significant both in relation to the other endpoint, and independently of the other endpoint unless the context specifically indicates otherwise.
- each step comprises what is listed (unless that step includes a limiting term such as “consisting of’), meaning that each step is not intended to exclude, for example, other additives, components, integers or steps that are not listed in the step.
- the methods disclosed herein comprise alternating electric fields.
- the alternating electric field used in the methods disclosed herein is a tumor-treating field.
- the alternating electric field can vary dependent on the type of cell or condition to which the alternating electric field is applied.
- the alternating electric field can be applied through one or more electrodes placed on the subject’s body.
- arrays can be placed on the front/back and sides of a patient and can be used with the systems and methods disclosed herein.
- the alternating electric field can alternate between the pairs of electrodes.
- a first pair of electrodes can be placed on the front and back of the subject and a second pair of electrodes can be placed on either side of the subject, the alternating electric field can then be applied and can alternate between the front and back electrodes and then to the side to side electrodes.
- the frequency of the alternating electric field is between 100 kHz and 1MHz. In some aspects, the frequency of the alternating electric field is between 100 and 500 kHz.
- the frequency of the alternating electric fields can also be, but is not limited to, between 50 and 500 kHz, between 100 and 500 kHz, between 25 kHz and 1 MHz, between 50 and 190 kHz, between 25 and 190 kHz, between 180 and 220 kHz, or between 210 and 400 kHz.
- the frequency of the alternating electric fields can be electric fields at 50 kHz, 100 kHz, 150 kHz, 200 kHz, 250 kHz, 300 kHz, 350 kHz, 400 kHz, 450 kHz, 500 kHz, or any frequency between.
- the frequency of the alternating electric field is from about 200 kHz to about 400 kHz, from about 250 kHz to about 350 kHz, and may be around 300 kHz.
- the field strength of the alternating electric fields can be between 0.5 and 4 V/cm RMS. In some aspects, the field strength of the alternating electric fields can be between 1 and 4 V/cm RMS.
- different field strengths can be used (e.g., between 0.1 and 10 V/cm). In some aspects, the field strength can be 1.75 V/cm RMS. In some embodiments the field strength is at least 1 V/cm RMS. In some aspects, the field strength can be at least 0.9 V/cm RMS. In other embodiments, combinations of field strengths are applied, for example combining two or more frequencies at the same time, and/or applying two or more frequencies at different times.
- the alternating electric fields can be applied for a variety of different intervals ranging from 0.5 hours to 72 hours. In some aspects, a different duration can be used (e.g., between 0.5 hours and 14 days). In some aspects, application of the alternating electric fields can be repeated periodically. For example, the alternating electric fields can be applied every day for a two hour duration.
- the exposure may last for at least 6 hours, at least 12 hours, at least 24 hours, at least 36 hours, at least 48 hours, or at least 72 hours or more.
- the disclosed methods comprising applying one or more alternating electric fields to a cell or to a subject.
- the alternating electric field is applied to a target site or tumor target site.
- this can often refer to applying alternating electric fields to a subject comprising a cell.
- applying alternating electric fields to a target site of a subject results in applying alternating electric fields to a cell.
- trastuzumab antibodies to be administered to a target site of a subject in need thereof.
- trastuzumab is administered as a combination therapy or treatment with alternating electric fields.
- compositions comprising one or more trastuzumab antibodies.
- the composition can be a pharmaceutical composition (e.g., formulation, preparation, medicament) comprising, or consisting essentially of, or consisting of as an active ingredient, trastuzumab as described herein, and a pharmaceutically acceptable carrier, diluent, or excipient.
- a pharmaceutical composition e.g., formulation, preparation, medicament
- a pharmaceutically acceptable carrier e.g., diluent, or excipient.
- compositions and formulations of trastuzumabwith a pharmaceutically acceptable carrier or diluent are disclosed.
- pharmaceutical compositions comprising trastuzumab, and a pharmaceutically acceptable carrier.
- compositions described herein can comprise a pharmaceutically acceptable carrier.
- pharmaceutically acceptable is meant a material or carrier that would be selected to minimize any degradation of the active ingredient and to minimize any adverse side effects in the subject, as would be well known to one of skill in the art.
- carriers include dimyristoylphosphatidyl (DMPC), phosphate buffered saline or a multivesicular liposome.
- DMPC dimyristoylphosphatidyl
- PG:PC:Cholesterol:peptide or PC:peptide can be used as carriers in this invention.
- Other suitable pharmaceutically acceptable carriers and their formulations are described in Remington: The Science and Practice of Pharmacy (19th ed.) ed. A.R.
- compositions typically include, but are not limited to, saline, Ringer’s solution and dextrose solution.
- the pH of the solution can be from about 5 to about 8, or from about 7 to about 7.5.
- Further carriers include sustained release preparations such as semi-permeable matrices of solid hydrophobic polymers containing the composition, which matrices are in the form of shaped articles, e.g., films, stents (which are implanted in vessels during an angioplasty procedure), liposomes or microparticles. It will be apparent to those persons skilled in the art that certain carriers may be more preferable depending upon, for instance, the route of administration and concentration of composition being administered.
- compositions can also include carriers, thickeners, diluents, buffers, preservatives and the like, as long as the intended activity of the polypeptide, peptide, nucleic acid, vector of the invention is not compromised.
- Pharmaceutical compositions may also include one or more active ingredients (in addition to the composition of the invention) such as antimicrobial agents, anti-inflammatory agents, anesthetics, and the like.
- active ingredients in addition to the composition of the invention
- delivery of the disclosed compositions to cells can be via a variety of mechanisms.
- the pharmaceutical composition may be administered in a number of ways depending on whether local or systemic treatment is desired, and on the area to be treated.
- Preparations of parenteral administration include sterile aqueous or non-aqueous solutions, suspensions, and emulsions.
- non-aqueous solvents are propylene glycol, polyethylene glycol, vegetable oils such as olive oil, and injectable organic esters such as ethyl oleate.
- Aqueous carriers include water, alcoholic/aqueous solutions, emulsions or suspensions, including saline and buffered media.
- Parenteral vehicles include sodium chloride solution, Ringer’s dextrose, dextrose and sodium chloride, lactated Ringer’s, or fixed oils.
- Intravenous vehicles include fluid and nutrient replenishers, electrolyte replenishers (such as those based on Ringer’s dextrose), and the like. Preservatives and other additives may also be present such as, for example, antimicrobials, anti -oxidants, chelating agents, and inert gases and the like.
- Formulations for optical administration may include ointments, lotions, creams, gels, drops, suppositories, sprays, liquids and powders.
- Conventional pharmaceutical carriers, aqueous, powder or oily bases, thickeners and the like may be necessary or desirable.
- compositions for oral administration include powders or granules, suspensions or solutions in water or non-aqueous media, capsules, sachets, or tablets. Thickeners, flavorings, diluents, emulsifiers, dispersing aids, or binders may be desirable.
- compositions may potentially be administered as a pharmaceutically acceptable acid- or base- addition salt, formed by reaction with inorganic acids such as hydrochloric acid, hydrobromic acid, perchloric acid, nitric acid, thiocyanic acid, sulfuric acid, and phosphoric acid, and organic acids such as formic acid, acetic acid, propionic acid, glycolic acid, lactic acid, pyruvic acid, oxalic acid, malonic acid, succinic acid, maleic acid, and fumaric acid, or by reaction with an inorganic base such as sodium hydroxide, ammonium hydroxide, potassium hydroxide, and organic bases such as mon-, di-, trialkyl and aryl amines and substituted ethanolamines.
- inorganic acids such as hydrochloric acid, hydrobromic acid, perchloric acid, nitric acid, thiocyanic acid, sulfuric acid, and phosphoric acid
- organic acids such as formic acid, acetic acid, propionic acid, glyco
- Disclosed are methods of treating a subject in need thereof comprising applying an alternating electric field, at a frequency for a period of time, to a target site of the subject in need thereof; and administering trastuzumab to the target site of the subject in need thereof.
- the target site comprises a cell.
- the cell can be, but is not limited to a cancer cell .
- a cancer cell can be, but is not limited to, a breast cancer cell or a stomach cancer cell,
- the alternating electric field is applied before, after, or simultaneously with administering the trastuzumab.
- the trastuzumab is administered prior to, simultaneous with or after applying the alternating electric field
- Applying the alternating electric field before administering the trastuzumab can include seconds, minutes, or hours before administering the trastuzumab.
- Applying the alternating electric field after administering the trastuzumab can include seconds, minutes, hours, or days after administering the trastuzumab.
- Applying the alternating electric field simultaneously with administering the trastuzumab can include seconds or minutes before or after administering the trastuzumab.
- simultaneously applying the alternating electric field and the trastuzumab can include administering the trastuzumab while the alternating electric field is being applied.
- the step of applying the alternating electric field begins at least one hour before the given time.
- the trastuzumab comprises a detectable agent.
- a detectable agent or label, is any molecule that can be associated with trastuzumab, directly or indirectly, and which results in a measurable, detectable signal, either directly or indirectly.
- Many such labels for conjugating or coupling to an antibody are known to those of skill in the art.
- detection agents can be, but are not limited to, radioactive isotopes, fluorescent molecules (fluorophore), phosphorescent molecules, enzymes, antibodies, and ligands.
- a label can be, but is not limited to, an isotope marker, colorimetric biosensors, or fluorescent labels.
- fluorescent markers can be, but are not limited to, green fluorescent protein (GFP) or rhodamine fluorescent protein (RFP).
- Other labels can include biotin, streptavidin, horseradish peroxidase, or luciferase.
- fluorescent labels include, but are not limited to, fluorescein (FITC), 5,6-carboxymethyl fluorescein, Texas red, nitrobenz-2-oxa-l,3-diazol-4-yl (NBD), coumarin, dansyl chloride, rhodamine, 4'-6-diamidino-2-phenylinodole (DAPI), and the cyanine dyes Cy3, Cy3.5, Cy5, Cy5.5 and Cy7.
- Preferred fluorescent labels are fluorescein (5-carboxyfluorescein-N- hydroxysuccinimide ester) and rhodamine (5,6-tetramethyl rhodamine).
- Preferred fluorescent labels for combinatorial multicolor coding are FITC and the cyanine dyes Cy3, Cy3.5, Cy5, Cy5.5 and Cy7.
- the absorption and emission maxima, respectively, for these fluors are: FITC (490 nm; 520 nm), Cy3 (554 nm; 568 nm), Cy3.5 (581 nm; 588 nm), Cy5 (652 nm: 672 nm), Cy5.5 (682 nm; 703 nm) and Cy7 (755 nm; 778 nm), thus allowing their simultaneous detection.
- the fluorescent labels can be obtained from a variety of commercial sources, including Molecular Probes, Eugene, OR and Research Organics, Cleveland, Ohio.
- the frequency of the alternating electric field is any of those described herein. In some aspects, the frequency of the alternating electric field is between 100 and 500 kHz. For example, in some aspects, the frequency of the alternating electric field is 150 kHz.
- the alternating electric field has a field strength of any of those described herein. In some aspects, the alternating electric field has a field strength of between 0.5 and 4 V/cm RMS. For example, in some aspects, the alternating electric field has a field strength of 0.9 V/cm RMS.
- trastuzumab is administered intratumorally, intracranially, intraventricularly, intrathecally, epidurally, intradurally, intravascularly, intravenously (targeted or non-targeted), intraarterially, intramuscularly, subcutaneously, intraperitoneally, orally, intranasally, via intratumor injection (e.g. computed tomography-guided, during surgery or biopsy) or via inhalation.
- the trastuzumab is administered in a pharmaceutical composition.
- the pharmaceutical composition can be any of those described herein.
- the subject in need thereof has cancer.
- the cancer can be breast or stomach cancer.
- the cancer can be a HER2 positive cancer.
- one or more of pAKT, pERK, and pHER2 expression is reduced as a result of treatment with alternating electric fields and trastuzumab.
- a subject in need thereof comprising applying an alternating electric field, at a frequency for a period of time, to a target site of the subject in need thereof; administering trastuzumab to the target site of the subject in need thereof and further comprising administering a second therapeutic agent to the subject.
- the second therapeutic agent can be a chemotherapeutic agent.
- Chemotherapeutic agents can be, but are not limited to, alkylating agents, antimetabolites, anthracyclines, antitumor antibiotics, monoclonal antibodies, platinums, or plant alkaloids.
- the trastuzumab is administered in a therapeutically effective amount.
- an increase of accumulation of trastuzumab is any amount higher than the amount of trastuzumab at the target site without applying an alternating electric field.
- an increase of accumulation of trastuzumab is an amount one fold, two fold, three fold, or more than the amount of trastuzumab at the target site without applying an alternating electric field.
- the target site comprises a cell.
- the cell can be a cancer cell.
- a cancer cell can be, but is not limited to, a breast or stomach cancer cell or any Her2 positive cell.
- the alternating electric field is applied before, after, or simultaneously with administering the trastuzumab. In some aspects, the trastuzumab is administered prior to, simultaneous with or after applying the alternating electric field.
- Applying the alternating electric field before administering the trastuzumab can include seconds, minutes, or hours before administering the trastuzumab.
- Applying the alternating electric field after administering the trastuzumab can include seconds, minutes, hours, or days after administering the antibody.
- Applying the alternating electric field simultaneously with administering the trastuzumab can include seconds or minutes before or after administering the trastuzumab.
- simultaneously applying the alternating electric field and the trastuzumab can include administering the trastuzumab while the alternating electric field is being applied.
- the step of applying the alternating electric field begins at least one hour before the given time.
- the trastuzumab comprises a detectable agent.
- a detectable agent or label, is any molecule that can be associated with trastuzumab, directly or indirectly, and which results in a measurable, detectable signal, either directly or indirectly.
- Many such labels for conjugating or coupling to an antibody are known to those of skill in the art.
- detection agents can be, but are not limited to, radioactive isotopes, fluorescent molecules (fluorophore), phosphorescent molecules, enzymes, antibodies, and ligands.
- a label can be, but is not limited to, an isotope marker, colorimetric biosensors, or fluorescent labels.
- fluorescent markers can be, but are not limited to, green fluorescent protein (GFP) or rhodamine fluorescent protein (RFP).
- Other labels can include biotin, streptavidin, horseradish peroxidase, or luciferase.
- fluorescent labels include, but are not limited to, fluorescein (FITC), 5,6-carboxymethyl fluorescein, Texas red, nitrobenz-2-oxa-l,3-diazol-4-yl (NBD), coumarin, dansyl chloride, rhodamine, 4'-6-diamidino-2-phenylinodole (DAPI), and the cyanine dyes Cy3, Cy3.5, Cy5, Cy5.5 and Cy7.
- Preferred fluorescent labels are fluorescein (5-carboxyfluorescein-N- hydroxysuccinimide ester) and rhodamine (5,6-tetramethyl rhodamine).
- Preferred fluorescent labels for combinatorial multicolor coding are FITC and the cyanine dyes Cy3, Cy3.5, Cy5, Cy5.5 and Cy7.
- the absorption and emission maxima, respectively, for these fluors are: FITC (490 nm; 520 nm), Cy3 (554 nm; 568 nm), Cy3.5 (581 nm; 588 nm), Cy5 (652 nm: 672 nm), Cy5.5 (682 nm; 703 nm) and Cy7 (755 nm; 778 nm), thus allowing their simultaneous detection.
- the fluorescent labels can be obtained from a variety of commercial sources, including Molecular Probes, Eugene, OR and Research Organics, Cleveland, Ohio.
- the frequency of the alternating electric field is any of those described herein. In some aspects, the frequency of the alternating electric field is between 100 and 500 kHz. For example, in some aspects, the frequency of the alternating electric field is 150 kHz.
- the alternating electric field has a field strength of any of those described herein. In some aspects, the alternating electric field has a field strength of between 0.5 and 4 V/cm RMS. For example, in some aspects, the alternating electric field has a field strength of 0.9 V/cm RMS.
- the trastuzumab is administered intratumorally, intracranially, intraventricularly, intrathecally, epidurally, intradurally, intravascularly, intravenously (targeted or non-targeted), intraarterially, intramuscularly, subcutaneously, intraperitoneally, orally, intranasally, via intratumor injection (e.g. computed tomography-guided, during surgery or biopsy) or via inhalation.
- the trastuzumab is administered in a pharmaceutical composition.
- the pharmaceutical composition can be any of those described herein.
- the subject in need thereof has cancer.
- the cancer can be breast or stomach cancer.
- the cancer can be a HER2 positive cancer.
- one or more of pAKT, pERK, and pHER2 expression is reduced as a result of the increased accumulation of trastuzumab at the target site.
- a second therapeutic agent can be a chemotherapeutic agent.
- Chemotherapeutic agents can be, but are not limited to, alkylating agents, antimetabolites, anthracy clines, antitumor antibiotics, monoclonal antibodies, platinums, or plant alkaloids.
- the trastuzumab is administered in a therapeutically effective amount.
- Disclosed are methods of inhibiting cancer cell proliferation at a target site of a subject in need thereof comprising applying an alternating electric field, at a frequency for a period of time, to the target site of the subject in need thereof; and administering trastuzumab to the target site of the subject in need thereof, wherein cancer cell proliferation is inhibited.
- the increase in the inhibition of cancer cell proliferation is compared to cancer cell proliferation of a target site when alternating electric fields are administered alone, where the trastuzumab is administered alone, or wherein no treatment is administered to the subject.
- cancer cell proliferation is inhibited compared to administering trastuzumab in the absence of applying an alternating electric field.
- there is an increase in the inhibition of cancer cell proliferation For example, an increase in the inhibition of cancer cell proliferation is compared to administering the trastuzumab at the target site without applying an alternating electric field.
- an increase in the inhibition of cancer cell proliferation is any amount higher than the amount of inhibition of cancer cell proliferation at the target site without applying an alternating electric field.
- an inhibition of cancer cell proliferation is an amount one fold, two fold, three fold, or more than the amount of inhibition of cancer cell proliferation without applying an alternating electric field.
- the target site comprises a cell.
- the cell can be a cancer cell.
- a cancer cell can be, but is not limited to, a breast or stomach cancer cell.
- target site is a cancer cell.
- the alternating electric field is applied before, after, or simultaneously with administering the trastuzumab. In some aspects, the trastuzumab is administered prior to, simultaneous with or after applying the alternating electric field.
- Applying the alternating electric field before administering the trastuzumab can include seconds, minutes, or hours before administering the trastuzumab.
- Applying the alternating electric field after administering the trastuzumab can include seconds, minutes, hours, or days after administering the trastuzumab.
- Applying the alternating electric field simultaneously with administering the trastuzumab can include seconds or minutes before or after administering the trastuzumab.
- simultaneously applying the alternating electric field and the antibody can include administering the trastuzumab while the alternating electric field is being applied.
- the step of applying the alternating electric field begins at least one hour before the given time.
- the trastuzumab comprises a detectable agent.
- a detectable agent or label, is any molecule that can be associated with trastuzumab, directly or indirectly, and which results in a measurable, detectable signal, either directly or indirectly.
- Many such labels for conjugating or coupling to an antibody are known to those of skill in the art.
- detection agents can be, but are not limited to, radioactive isotopes, fluorescent molecules (fluorophore), phosphorescent molecules, enzymes, antibodies, and ligands.
- a label can be, but is not limited to, an isotope marker, colorimetric biosensors, or fluorescent labels.
- fluorescent markers can be, but are not limited to, green fluorescent protein (GFP) or rhodamine fluorescent protein (RFP).
- Other labels can include biotin, streptavidin, horseradish peroxidase, or luciferase.
- fluorescent labels include, but are not limited to, fluorescein (FITC), 5,6-carboxymethyl fluorescein, Texas red, nitrobenz-2-oxa-l,3-diazol-4-yl (NBD), coumarin, dansyl chloride, rhodamine, 4'-6-diamidino-2-phenylinodole (DAPI), and the cyanine dyes Cy3, Cy3.5, Cy5, Cy5.5 and Cy7.
- Preferred fluorescent labels are fluorescein (5-carboxyfluorescein-N- hydroxysuccinimide ester) and rhodamine (5,6-tetramethyl rhodamine).
- Preferred fluorescent labels for combinatorial multicolor coding are FITC and the cyanine dyes Cy3, Cy3.5, Cy5, Cy5.5 and Cy7.
- the absorption and emission maxima, respectively, for these fluors are: FITC (490 nm; 520 nm), Cy3 (554 nm; 568 nm), Cy3.5 (581 nm; 588 nm), Cy5 (652 nm: 672 nm), Cy5.5 (682 nm; 703 nm) and Cy7 (755 nm; 778 nm), thus allowing their simultaneous detection.
- the fluorescent labels can be obtained from a variety of commercial sources, including Molecular Probes, Eugene, OR and Research Organics, Cleveland, Ohio.
- the frequency of the alternating electric field is any of those described herein. In some aspects, the frequency of the alternating electric field is between 100 and 500 kHz. For example, in some aspects, the frequency of the alternating electric field is 150 kHz.
- the alternating electric field has a field strength of any of those described herein. In some aspects, the alternating electric field has a field strength of between 0.5 and 4 V/cm RMS. For example, in some aspects, the alternating electric field has a field strength of 0.9 V/cm RMS.
- the trastuzumab is administered intratumorally, intracranially, intraventricularly, intrathecally, epidurally, intradurally, intravascularly, intravenously (targeted or non-targeted), intraarterially, intramuscularly, subcutaneously, intraperitoneally, orally, intranasally, via intratumor injection (e.g. computed tomography-guided, during surgery or biopsy) or via inhalation.
- the trastuzumab is administered in a pharmaceutical composition.
- the pharmaceutical composition can be any of those described herein.
- the subject in need thereof has cancer.
- the cancer can be breast or stomach cancer.
- the cancer can be a HER2 positive cancer.
- one or more of pAKT, pERK, and pHER2 expression is reduced as a result of the increased accumulation of trastuzumab at the target site.
- a target site of a subject in need thereof comprising applying an alternating electric field, at a frequency for a period of time, to a target site of the subject in need thereof; administering trastuzumab to the target site of the subject in need thereof, wherein cancer cell proliferation is inhibited; and further comprising administering a second therapeutic agent to the subject.
- the second therapeutic agent can be a chemotherapeutic agent.
- Chemotherapeutic agents can be, but are not limited to, alkylating agents, antimetabolites, anthracyclines, antitumor antibiotics, monoclonal antibodies, platinums, or plant alkaloids.
- the trastuzumab is administered in a therapeutically effective amount.
- Disclosed are methods of increasing apoptosis of cancer cells at a target site of a subject in need thereof comprising applying an alternating electric field, at a frequency for a period of time, to the target site of the subject in need thereof; and administering trastuzumab to the target site of the subject in need thereof, wherein apoptosis of cancer cells is increased.
- the increased apoptosis of the cancer cells is compared to cell apoptosis of a target site when alternating electric fields are administered alone, where the trastuzumab is administered alone, or wherein no treatment is administered to the subject.
- increased apoptosis of the cancer cells is inhibited compared to administering trastuzumab in the absence of applying an alternating electric field.
- there is an increase in apoptosis of the cancer cells For example, an increase in apoptosis of the cancer cells is compared to administering the trastuzumab at the target site without applying an alternating electric field.
- an increase in apoptosis of the cancer cells is any amount higher than the amount of increased apoptosis of the cancer cells at the target site without applying an alternating electric field.
- an increase in apoptosis of the cancer cells is an amount one fold, two fold, three fold, or more than the amount of increased apoptosis of the cancer cells without applying an alternating electric field.
- the target site comprises a cell.
- the cell can be a cancer cell.
- a cancer cell can be a breast or stomach cancer cell.
- target site is a cancer cell.
- the alternating electric field is applied before, after, or simultaneously with administering the trastuzumab. In some aspects, the trastuzumab is administered prior to, simultaneous with or after applying the alternating electric field.
- Applying the alternating electric field before administering the trastuzumab can include seconds, minutes, or hours before administering the trastuzumab.
- Applying the alternating electric field after administering the trastuzumab can include seconds, minutes, hours, or days after administering the trastuzumab.
- Applying the alternating electric field simultaneously with administering the trastuzumab can include seconds or minutes before or after administering the trastuzumab.
- simultaneously applying the alternating electric field and the antibody can include administering the trastuzumab while the alternating electric field is being applied.
- the step of applying the alternating electric field begins at least one hour before the given time.
- the trastuzumab comprises a detectable agent.
- a detectable agent is any molecule that can be associated with trastuzumab, directly or indirectly, and which results in a measurable, detectable signal, either directly or indirectly.
- Many such labels for conjugating or coupling to an antibody are known to those of skill in the art.
- detection agents can be, but are not limited to, radioactive isotopes, fluorescent molecules (fluorophore), phosphorescent molecules, enzymes, antibodies, and ligands.
- a label can be, but is not limited to, an isotope marker, colorimetric biosensors, or fluorescent labels.
- fluorescent markers can be, but are not limited to, green fluorescent protein (GFP) or rhodamine fluorescent protein (RFP).
- Other labels can include biotin, streptavidin, horseradish peroxidase, or luciferase.
- fluorescent labels include, but are not limited to, fluorescein (FITC), 5,6-carboxymethyl fluorescein, Texas red, nitrobenz-2-oxa-l,3-diazol-4-yl (NBD), coumarin, dansyl chloride, rhodamine, 4'-6-diamidino-2-phenylinodole (DAPI), and the cyanine dyes Cy3, Cy3.5, Cy5, Cy5.5 and Cy7.
- Preferred fluorescent labels are fluorescein (5-carboxyfluorescein-N- hydroxysuccinimide ester) and rhodamine (5,6-tetramethyl rhodamine).
- Preferred fluorescent labels for combinatorial multicolor coding are FITC and the cyanine dyes Cy3, Cy3.5, Cy5, Cy5.5 and Cy7.
- the absorption and emission maxima, respectively, for these fluors are: FITC (490 nm; 520 nm), Cy3 (554 nm; 568 nm), Cy3.5 (581 nm; 588 nm), Cy5 (652 nm: 672 nm), Cy5.5 (682 nm; 703 nm) and Cy7 (755 nm; 778 nm), thus allowing their simultaneous detection.
- the fluorescent labels can be obtained from a variety of commercial sources, including Molecular Probes, Eugene, OR and Research Organics, Cleveland, Ohio.
- the frequency of the alternating electric field is any of those described herein. In some aspects, the frequency of the alternating electric field is between 100 and 500 kHz. For example, in some aspects, the frequency of the alternating electric field is 150 kHz.
- the alternating electric field has a field strength of any of those described herein. In some aspects, the alternating electric field has a field strength of between 0.5 and 4 V/cm RMS. For example, in some aspects, the alternating electric field has a field strength of 0.9 V/cm RMS.
- the trastuzumab is administered intratumorally, intracranially, intraventricularly, intrathecally, epidurally, intradurally, intravascularly, intravenously (targeted or non-targeted), intraarterially, intramuscularly, subcutaneously, intraperitoneally, orally, intranasally, via intratumor injection (e.g. computed tomography-guided, during surgery or biopsy) or via inhalation.
- the trastuzumab is administered in a pharmaceutical composition.
- the pharmaceutical composition can be any of those described herein.
- the subject in need thereof has a cancer selected from breast or stomach cancer.
- the cancer can be a HER2 positive cancer.
- one or more of pAKT, pERK, and pHER2 expression is reduced as a result of the increased accumulation of trastuzumab at the target site.
- Disclosed are methods of increasing apoptosis of cancer cells at a target site of a subject in need thereof comprising applying an alternating electric field, at a frequency for a period of time, to a target site of the subject in need thereof; administering trastuzumab to the target site of the subject in need thereof, wherein cancer cell apoptoses is increased; and further comprising administering a second therapeutic agent to the subject.
- the second therapeutic agent can be a chemotherapeutic agent.
- Chemotherapeutic agents can be, but are not limited to, alkylating agents, antimetabolites, anthracyclines, antitumor antibiotics, monoclonal antibodies, platinums, or plant alkaloids.
- the trastuzumab is administered in a therapeutically effective amount.
- kits comprising an antibody and one or more materials for delivering alternating electric fields, such as the Optune system.
- the Human Epidermal Growth Receptor 2 is one of the highest expressed negative receptor that constitutes approximately 15-20% of malevolent breast cancerous tumors among women.
- the prevalence of HER2 has untimely and unfavorable consequences on breast cancer, and its underlying carcinomous cell processes, structures, and growth.
- Trastuzumab a humanized antibody that is rooted in relatively recent foundations, has been found operational in its construction of treatments against HER2 -positive breast cancer. This drug is combined with radiotherapy or chemotherapy to deregulate HER2 genes in the body.
- patients who suffer from evolved tumors in advanced stages of cancer exhibit a good amount of tolerance towards singularly used Trastuzumab treatment.
- TTFs Tumor Testing Fields
- the research evaluates the aspects and effects of this pairing, both in vivo and in vitro through BT474 cells.
- the TTFields conduct an electromagnetic boundary, which generates sine-wave radiations to manipulate the HER2 gene structure.
- the methods followed in this example also examine the gene cell cultures and their viability through solutions like Tryptophan blue, or the Crystal violet which may or may not deliver certain testmants to the experiment.
- the Western Blot Test and the IHC confirm the presence of antibodies and negative receptors in the BT474 cells. These procedures contribute to the formulation of a treatment plan that overcomes the trastuzumab-resistant nature of the tumor, which is essentially the aim of the research. This example shows that a healthy combination of TTFs with Trastuzumab can inhibit the dimerlization and the expression of dangerous gene structures.
- TTFs were generated through a pair of insulated wires attached to a functional generator and amplifier of high voltage, generating sine-wave signals in the range of 0-800 V [17] It resulted in an applied electric field intensity of 0.9 V/cm, while the frequency was 150 kHz. The field intensity was kept at 0.9 V/cm because of its use in clinical settings.
- the cells were plated in 100-mm dishes and incubated at 37°C under humidity as well as 5% C02 atmosphere, for the purpose of irradiation treatment, until 70-80% confluency was achieved. ii. Cell Culture
- BT-474 and JIMT-1 ACC-589 ductal carcinoma cells was obtained from the
- BT-474 and JIMT-1 cells were maintained in DMEM-F12 supplemented with 10% heat-inactivated fetal bovine serum (FBS), 2 mmol/L- glutamine, and 1% penicillin G-streptomycin. Cells were maintained at a temperature of 37°C with 5% C02. iii. Cell Viability Assay
- CFA Colony Formation Assay
- the cells were subjected to the TTFields 6 hours after trastuzumab exposure at a final concentration of 5 pmol/L, after which cells were incubated for 48 hours. After 14-20 days, colonies were stained with 0.4% Crystal Violet (Sigma, St. Louis, MO, USA). The plating efficiency (PE) indicates the percentage of seeded cells of a particular cell line that formed colonies under specific culture conditions.
- Total proteins were extracted from OS cells using RIPA buffer (50 mM Tris-Cl, pH 7.4; l%NP-40; 150 mM NaCl, and 1 mM EDTA), complemented with protease inhibitors (1 mM PMSF, 1 pg/ml aprotinin, 1 pg/ml leupeptin, and 1 mM Na3V04), and the Bradford method was utilized for quantification.
- SD S/polyacrylamide gel electrophoresis was used to separate the protein samples (30 pg), which were then transferred to a nitrocellulose membrane. Followinged by blocking the non-specific antibody binding sites, the membrane was incubated at 4°C overnight with mouse monoclonal antibodies.
- Alexa 488-NHS Ester (Invitrogen, Waltham, MA, USA) was prepared using DMSO. It contained 1% acetic acid was dissolved in 500 pL TRZ (10 mg/mL) in 1 M sodium bicarbonate solution with pH of 8.4. The obtained reaction was incubated at room temperature for 1 hour after which it was purified through size exclusion PD-10 column (GE Healthcare Bio-Sciences AB, Uppsala, Sweden) and connected with an ultra-violet/visible detector, which was set at 517-nm maximum wavelength.
- BT-474 cells (5 c 106) were administered through subcutaneous injection into male
- the protocol by Institutional Animal Care and Use Committee (IACUC) (number KIRAMS 2018-0016; date of approval: 15 May 2018) of Korea Institute of Radiological and Medical Sciences (KIRAMS) was followed for all experiments related to mice (5-6 weeks old; weighing 18-20 grams).
- the frozen tissue samples were divided into 8 pm-thick portions with a Leica CM 1850 cryostat (Ueica microsystems, USA), rehydrated using PBS, stained with DAPI, and were observed under a fluorescent microscope (In cell analyzer 2200, GE Healthcare, USA).
- the TUNEU-positive cells were stained with Click-iT® TUNEL Alexa Fluor® 647 Imaging Assay kit (Invitrogen, Carlsbad, CA, USA). Further, the apoptotic cells were calculated by TUNEL assay. ix. Histological Image Acquisition
- In cell analyzer is custom-built with a fluorescent microscope and mosaic stitching software (In cell developer toolbox, GE Healthcare, USA), fluorescent images were obtained with lOx objective lenses using three independent channels. Further, DAPI was used for nuclei (shown in blue), Alexa 488-TRZ (green), and Rhodamine lectin to detect blood vessel (red) images. Offset was determined by Autofocus. x. Image Analysis of Alexa 488 Trastuzumab Accumulation in Tumor
- Jimtl cells was treated with fixed dose of trastuzumab to evaluate its effects on breast cancer cells in cell morphology and 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) assays and colony forming assay (FIG. 2A-2C).
- Jimtl cells were treated with TTFs (0.9 V/cm), TRZ, or a combination of the two and the changes related to morphology were observed using a phase -contrast microscope in combined treatment group.
- the cell growth was noted to be significantly inhibited after a 48-hour treatment at 100 pg trastuzumab.
- p-HER2 expression levels and apoptosis marker cleaved PARP as well as anti apoptosis marker Bcl-2 were studied by the western (or protein immunoblot) blotting technique.
- TTF+TRZ TTF+TRZ
- Antibody accumulation was determined by analyzing fluorescence intensity in tumor sections. The result shows that Alexa 488-TRZ (green) accumulation was improved with TTF.
- TTF significantly improved the extravasation of TRZ within 60 pm from the tumor vessel.
- the present study validates the postulation that supporting a generalized trastuzumab drug, which is used to exercise control over life-threatening HER2 positive breast cancerous genes, with Tumor Electrofields Therapy may amplify the inhibition of such trastuzumab resistant cells.
- the research also aims to identify and unravel the workings of a TTField system on involved trastuzumab-resistant, HER2 positive breast cancer cell lines. By doing so, it brings up the value of TTF’s for use in future studies.
- the FDA approved the use of Trastuzumab and its incorporation in devising the treatment plan of GBM or the Glioblastoma Multiforme, a rare malignant tumor.
- trastuzumab Mechanisms that contribute to trastuzumab’s failure to operate upon HER2 are intensively studied, and include the following general observations: i) obstacles are faced by trastuzumab in binding to HER2; ii) upregulation of signaling pathways causes HER2 downstream; iii) Trastuzumab’s tendency of signaling through alternate pathways, and iv) failure to trigger immune-mediated mechanisms to destroy tumor cells [6]
- TTF trastuzumab resistant nature of cancerous genes can be compensated by TTF.
- This study is first of its’ own, that destroys cancerous cells by using the Trastuzumab antibody, and sensitizing it within a well-constructed electromagnetic TTF. This finding was confirmed that the penetration and uptake of Alexa 488-TRZ Trastuzumab was enhanced after TTF treatment.
- FIG. 4 shows that TTTield increased apoptotic region measured by TUNEL assay. Increased apoptotic region can induce decreased interstitial pressure. Enhanced penetration and uptake of Alexa 488-TRZ could be explained due to decreased interstitial pressure after TTF treatment.
- TTF is responsible for GBM arrest, deregulating kinase expression that is dependent on cyclin, inducing caspase-3 activation, as well as spindle formation along with cell death in vitro [20,21]
- TTF is also responsible for inhibiting the proliferation and invasion of GBM [3,21]
- in vivo and in vitro experiments [16] have agreed at the ideality of TTFields, as it targets cancerous cells specifically, and presents as an attractive alternative to conventional cancer treatment.
- TTF tumor necrosis factor
- Numerous in vivo experiments have pointed towards the promising results of TTF’s in executing anti-tumor activities. Further, TTF’s are also capable of impeding the human lung tumor as demonstrated in the xenograft models and, GBM or GBM patient-derived stem cell tumor bearing models [22,23]
- the disclosed data show a distinct positive outline displayed by the TTF that must be studied to and examined to discuss the therapeutic potential of TTF in combination with trastuzumab in HER2 -positive breast cancer.
- BT474 cell lines are employed into in vivo and in vitro experiments, and their resultant changes are noted and analyzed. From the observations, it has been shown that the use of a TTField leads to the sensitization of the primary trastuzumab-resistant cell line. Consequently, this facilitates apoptosis by increasing the expression of caspase 3/7 assay.
- TTFs can inhibit phosphorylation of the expression levels of HER2, p-AKT, and p-MAPK in HER2 -positive BT474 cells. In turn, this suppresses migration and invasion of cells, and successfully inhibits tumor cell growth in vivo model. By evaluating the pathways, the study also identifies TTF therapy as an alternate solution to patients who are resistant to chemotherapy from antibody like trastuzumab.
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| PCT/IB2022/055092 WO2022254340A1 (en) | 2021-06-01 | 2022-05-31 | Compositions and methods for treating with a combination of alternating electric fields and trastuzumab |
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| IL320470A (en) * | 2022-12-28 | 2025-06-01 | Novocure Gmbh | Compositions, systems, and methods for treating cancer using tumor treating fields and anti-vegfr-2 antibodies |
| WO2025141513A1 (en) * | 2023-12-28 | 2025-07-03 | Novocure Gmbh | Compositions and methods of a concomitant therapy of alternating electric fields and notch-1 inhibitor or hes5 inhibitor |
| US20260083819A1 (en) * | 2024-09-20 | 2026-03-26 | Novocure Gmbh | Compositions, systems, and methods for treating cancer using tumor treating fields (ttfields) and interferon gamma |
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| CN111565632B (en) * | 2017-10-13 | 2024-06-28 | 奥特美医疗有限责任公司 | Systems and methods of using microtubule conductivity for characterizing, diagnosing and treating a patient's health condition |
| JP7216829B2 (en) * | 2019-02-22 | 2023-02-01 | ノボキュア ゲーエムベーハー | Treatment of gastric cancer using TT fields in combination with XELOX or FOLFOX |
| EP4480526A3 (en) * | 2019-04-22 | 2025-03-12 | Boston Scientific Scimed, Inc. | Combination electrical and chemotherapeutic treatment of cancer |
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