The application of electric pulses to tissues causes cell membrane destabilization, allowing exogenous molecules to enter the cells. This delivery technique can be used for plasmid gene therapy. Reporter gene expression after plasmid delivery with eight representative published protocols was compared in B16.F10 mouse melanoma tumors. This expression varied significantly based on the pulse parameters utilized for delivery. To observe the possible influence of plasmid injection and/or pulse application on endogenous gene expression, levels of stress related mRNAs four and 24 hours after delivery were determined by PCR array. Increases in mRNA levels for several inflammatory chemokines and cytokines were observed in response to plasmid injection, electric pulses alone, or the combination. This upregulation was confirmed by individual real-time reverse transcription TaqMan PCR assays. Proteins were extracted at the same time points from identically treated tumors and inflammatory protein levels were assayed by ELISA and by a custom multiplex bead array. Increases in inflammatory protein levels generally paralleled mRNA levels. Some differences were observed, which may have been due to differing expression kinetics. The observed upregulated expression of these cytokines and chemokines may aid or inhibit the therapeutic effectiveness of immune-based cancer gene therapies.
The use of
Many of the therapeutic studies of
Inflammation induced by the combination of plasmid delivery and electric pulses has been described in several tissues, most commonly muscle. Local inflammatory responses have been observed between 24 hours and seven days after plasmid injection (
When plasmid DNA is present, the observed inflammation may be due in part to the induction of an inflammatory response to CpG motif DNA. The mammalian TLR9 receptor recognizes double stranded DNA that is not CpG methylated as a danger signal (
Approximately 50 different electroporation protocols for
All procedures were approved by the Animal Use and Care Committee of the University of South Florida College of Medicine. 106 B16.F10 (ATCC CR6475) mouse melanoma cells in 50 μl PBS were injected subcutaneously in the left flank of female 7–8 week old C57Bl/6 mice (Jackson Laboratories, Bar Harbor, ME). Tumors were allowed to grow eight days to a diameter of approximately four mm before plasmid delivery.
gWizLuc, which encodes the luciferase gene driven by the CMV promoter, and gWizBlank, a plasmid vector that does not encode a transgene, were commercially prepared (Aldevron, Fargo, ND) and suspended to a concentration of 1 μg/μl in sterile injectable saline. Endotoxin levels were <0.1 EU/μg plasmid.
Mice were anesthetized using a mixture of 2.5% isoflurane and 97.5% O2. Tumors were injected with 50 μl plasmid DNA and pulsed immediately as described in each figure at a frequency of 1 Hz using a T820 Electrosquare porator. Delivery was performed with caliper electrodes moistened with electrode paste or with a 6-needle array per each published protocol. An autoswitcher (BTX, San Diego, CA) was used for delivery with the 6-needle array. At the time points indicated after delivery, mice were humanely sacrificed, tumors removed and snap frozen on dry ice.
For PCR assays, RNA was extracted from tumors using Trizol (Invitrogen, Carlsbad, CA), purified using RNeasy columns (Qiagen, Valencia, CA), and quantified RNA from four tumors per group was pooled. mRNA levels were determined using Mouse Stress and Toxicity SYBR PCR arrays (SABiosciences, Frederick, MD, USA) after reverse transcription per manufacturer’s instructions. Relative quantification was performed by comparison to the housekeeping genes β-actin and glyceraldehyde 3-phosphate dehydrogenase (GAPDH) using the ΔΔCt method. TaqMan one step RT-PCR was performed for GM-CSF, Cxcl10, IL-1α, IL-1β, IL-6, β-actin and GAPDH to confirm changes in mRNA levels (TaqMan Gene Expression Assays, Applied Biosystems, Foster City, CA). Since untreated tumors did not express GM-CSF endogenously, total lung RNA was used as a positive control.
For luciferase quantification, the tumors were weighed, homogenized and enzyme activity in extracts was normalized to the tumor weight (
Analysis of reporter gene expression after electrically mediated plasmid delivery to B16.F10 mouse melanomas was completed using analysis of variance (ANOVA). A post-hoc Dunnett’s test was used to adjust for multiple comparisons to one control group (injection of gWizLuc without electroporation). Analysis of cytokine protein expression was completed using ANOVA. A post-hoc Fisher’s Least Significant Difference test was used to adjust for multiple comparisons.
Eight published electroporation protocols for intratumor delivery were compared in the subcutaneous B16.F10 mouse melanoma model using a plasmid encoding luciferase as a reporter (gWizLuc, Aldevron, Fargo, ND). These protocols varied with respect to electrode, and pulse amplitude, length and number. At 24 hours, luciferase expression was determined (
To determine if
Gene expression was observed after delivery of saline or plasmid vector DNA with each pulse protocol and compared to untreated tumors and tumors injected with plasmid DNA without electroporation. Four and 24 hours after delivery, mice were sacrificed and tumors excised. Pooled RNA from tumors in each experimental group (n=4) was subjected to two step real-time SYBR RT-PCR performed using Mouse Stress and Toxicity SYBR PCR arrays (SABiosciences, Frederick, MD, USA). The gene groups contained in the array included oxidative or metabolic stress, heat shock, proliferation and carcinogenesis, growth arrest and senescence, necrosis or apoptosis, and inflammation. Each array was then repeated with a second group of four tumors. The fold changes in expression were determined by comparison to the housekeeping genes β-actin and GAPDH.
No downregulated mRNA levels were observed. The inflammation group contained the highest number of upregulated mRNA levels across the delivery groups. Within this group, mRNAs for Ccl21b, Ccl3/MIP-1α, Ccl4/MIP-1β, Cxcl10/IP-10, IL-1 α, IL-1 β, IL-6, IL-18, iNos, and Serpine1/PAI-1 were upregulated in response to at least one delivery condition, while mRNA levels for Csf2/GM-CSF, Lta/TNFβ, MIF, and NFκB1were unchanged.
In response to plasmid DNA injection alone, the array results indicated that most of the mRNA levels were upregulated by four hours after delivery. This is likely a response to CpG motif DNA. By 24 hours, expression was considerably reduced. Saline injection followed by electroporation protocol EP5 alone appeared to induce upregulation for Ccl21b and Serpine1/PAI-1, while saline injection with protocol EP6 appeared to upregulate Ccl21b, Cxcl10/IP-10, IL-1 α, IL-1 β, IL-6, iNos, and Serpine1/PAI-1 to higher levels. The detected increases in relative levels of mRNAs were tested by a one step TaqMan RT-PCR for a subset of targets, including IP-10, IL-1α, IL-1 β, IL-6, and Serpine1 (
To determine if the observed changes in mRNA levels resulted in concomitant changes in protein levels, a subset of proteins was assayed using ELISAs and multiplex bead arrays. For these experiments, deliveries were performed and samples taken as described for the RNA experiments. For each delivery group, four tumors were assayed individually.
Using ELISAs for mouse IL-1β and IL-6, low endogenous levels of each cytokine were present in untreated tumors (
Multiplex bead arrays were performed for mouse MIP-1α, MIP-1β, IL-1α, IL-1β, and IL-6 per manufacturer’s instructions (
Using reporter gene expression 24 hours after electrically mediated delivery, the level of transgene expression varied up to 92 fold over plasmid injection alone after delivery with different electroporation protocols. For some groups, no statistical increase in reporter gene expression was observed after delivery. For these protocols, reporter gene expression may not be detectable at this time point. Alternatively, the reduction in transmembrane potential necessary for membrane permeability may not have been reached. These results clearly indicate that the level of therapeutic transgene expression can be controlled by the electroporation protocol with which the plasmid is delivered. Although the expression levels varied significantly, it is difficult to make any generalizations concerning the relative usefulness of each pulse type. The therapeutic gene delivered and its desired level of expression should influence the pulsing protocol used for delivery, along with other methods used in the control of transgene expression, such as the use of alternative plasmid promoters.
Increases in levels of several inflammatory mRNAs were observed particularly after plasmid injection, application of pulse protocol EP6, or the combination of plasmid DNA with either pulse protocol. While changes in mRNA levels were confirmed using individual PCRs, particularly at greater than 10-fold increase on the array, the precise fold change in expression was not necessarily confirmed. Lower levels of upregulation were not necessarily reproducible, particularly at the 24 hour time point. This may be due to the differences in specific sequence targets and detection chemistries between the two PCR detection methods.
While proteins tended to be upregulated when the mRNA levels were upregulated, the specific levels did not necessarily correlate. It appeared that any manipulation of the tumor induced short-term IL-1α expression. For IL-1β, the array very closely reproduced the results of the ELISA assay. Interestingly, while the pattern of expression was similar for IL-6, the multiplex quantified levels were clearly lower than the ELISA quantified levels. After the array was performed, the ELISA was repeated on the same samples and the ELISA values were confirmed. This discrepancy between the two protein assays may be due to differing target affinities of the antibodies used in the respective assays. However, each assay indicated that IL-6 in particular was upregulated synergistically in response to combination delivery.
IL-10 levels were significantly increased at four hours after any delivery containing plasmid DNA, indicating that a CpG motif DNA effect was responsible. The expression of the chemokines MIP-1α and MIP-1β tended to be longer than cytokines expression, continuing through four and 24 hours. While MIP-1α, MIP-1β, IL-1β, IL-6, and IL-10 protein levels were increased after delivery by both electroporation protocols, expression tended to be higher after plasmid delivery with EP5 than with EP6. This conflicts with the observed mRNA levels, where detected mRNA was much higher after combination delivery with EP6 than with EP5. These discrepancies may be due to the particular time points chosen for the assays; changes in protein levels may occur at different time points. Also, protein levels may not necessarily directly depend on mRNA levels. For example, both mRNA and protein stability may affect protein levels (
In a study of pulse delivery alone in mouse muscle, increased levels of several mRNAs encoding proinflammatory modulators, including MIP-1α, MIP-1β, IP-10, IL-6, iNos and GM-CSF were observed by microarray two and four hours after delivery (
The CMV promoter is commonly used for gene therapy because it induces high levels of transcription in many tissues.
Inflammation induced by electroporation acts as a vaccine adjuvant after muscle delivery of antigen encoding plasmids (
The work in this study was supported by NIH 1 R21 CA106860 (LH).
RH has ownership interest in RMR Technologies and owns stock and stock options of Inovio Biomedical Corporation.
50 μg gWizLuc (Aldevron, Fargo, ND) was delivered to melanomas using various electroporation protocols: 1, ten 50 ms 800 V/cm pulses with a caliper electrode (
Mean fold changes in mRNA expression by reverse transcription and PCR array with respect to untreated control tumors after plasmid delivery to B16.F10 mouse melanomas
| Time Point (h) | Ccl21b | Ccl3/MIP-1α | Ccl4/MIP-1β | Cxcl10/IP-10 | IL-1α | IL-1β | IL-6 | IL-18 | iNos | Serpine1/PAI-1 | |
|---|---|---|---|---|---|---|---|---|---|---|---|
|
|
4 | 2.2 | 111.4 | 512.0 | 19.0 | 26.0 | 76.1 | 8.9 | 35.5 | 48.5 | 7.7 |
| 24 | 15.5 | 14.4 | 46.9 | 6.5 | 4.8 | 7.5 | 1.3 | 73.5 | 12.0 | 11.7 | |
|
|
4 | 11.7 | 2.4 | 2.5 | 2.8 | 6.1 | 6.7 | 3.4 | 1.5 | 3.1 | 18.4 |
| 24 | 4.4 | 3.7 | 2.5 | 2.8 | 3.4 | 3.3 | 1.6 | 6.6 | 3.1 | 15.7 | |
|
|
4 | 11.5 | 7.1 | 31.5 | 25.6 | 23.8 | 62.9 | 36.1 | 6.8 | 15.2 | 102.2 |
| 24 | 3.7 | 2.7 | 2.7 | 2.1 | 3.4 | 7.5 | 1.7 | 5.9 | 1.5 | 22.6 | |
|
|
4 | 1.7 | 4.3 | 6.3 | 46.8 | 10.2 | 16.6 | 32.0 | 2.8 | 17.8 | 1.9 |
| 24 | 13.7 | 10.4 | 29.3 | 11.1 | 3.5 | 7.3 | 1.7 | 26.5 | 18.7 | 40.1 | |
|
|
4 | −2.0 | 6.1 | 81.6 | 28.8 | 11.3 | 71.0 | 28.8 | 10.2 | 9.8 | 132.5 |
| 24 | 1.1 | 3.2 | 28.8 | 3.4 | 1.5 | 7.7 | −2.1 | 6.3 | 6.5 | 16.6 |
EP5, six 100 μs 1300 V/cm pulses delivered with a 6-needle array electrode; EP6, one 100 ms 667 V/cm pulse delivered with caliper electrodes
Fold changes in mRNA expression by reverse transcription and TaqMan PCR with respect to untreated control tumors after plasmid delivery to B16.F10 mouse melanomas
| Time Point (h) | Cxcl10/IP-10 | IL-1α | IL-1β | IL-6 | Serpine1/PAI-1 | |
|---|---|---|---|---|---|---|
|
|
4 | 24.8 | 7.7 | 7.6 | 39.0 | 0.7 |
| 24 | 3.2 | 1.0 | 1.1 | 1.2 | 0.3 | |
|
|
4 | 1.4 | 1.5 | 2.0 | 3.6 | 1.2 |
| 24 | 2.0 | 0.2 | 1.7 | 2.4 | 0.9 | |
|
|
4 | 13.7 | 14.8 | 68.6 | 128.0 | 2.5 |
| 24 | 0.3 | 2.0 | 6.5 | 2.3 | 0.8 | |
|
|
4 | 35.8 | 4.5 | 7.9 | 26.0 | 1.1 |
| 24 | 2.1 | 2.7 | 4.2 | 3.9 | 1.1 | |
|
|
4 | 21.4 | 14.4 | 40.0 | 128.0 | 1.7 |
| 24 | 2.6 | 3.2 | 9.1 | 5.6 | 1.0 |
Cytokine expression measured by ELISA after plasmid delivery to B16.F10 mouse melanomas (mean±SD)
| Time Point (h) | IL-1β (pg/mg total protein) | IL-6 (pg/mg total protein) | |
|---|---|---|---|
|
|
4.5±5.9 | 21.2±9.8 | |
|
|
4 | 112.5±50.0 | 245.9±126.8 |
| 24 | 1.9±2.2 | 32.1±14.5 | |
|
|
4 | 12.0±5.8 | 32.6±9.9 |
| 24 | 3.0±3.7 | 10.1±8.7 | |
|
|
4 | 57.6±24.5 | 141.2±106.5 |
| 24 | 7.8±4.7 | 10.1±8.8 | |
|
|
4 | 219.0±126.4*** | 1644.7±868.7*** |
| 24 | 8.6±5.9 | 45.0±3.5 | |
|
|
4 | 156.3±111.7* | 996.8±865.0** |
| 24 | 10.0±7.0 | 49.2±20.8 |
Cytokine expression measured by multiplex bead array after plasmid delivery to B16.F10 mouse melanomas (mean±SD)
| Time Point (h) | Ccl3/MIP-1α (pg/mg total protein) | Ccl4/MIP-1β (pg/mg total protein) | IL-1α (pg/mg total protein) | IL-1β (pg/mg total protein) | IL-6 (pg/mg total protein) | IL-10 (pg/mg total protein) | |
|---|---|---|---|---|---|---|---|
|
|
67.9±27.6 | 10.9±6.6 | 44.2±25.6 | 11.1±10.0 | 2.5±2.5 | 2.4±1.2 | |
|
|
4 | 453.4±38.1** | 130.7±159.5 | 214.0±115.3*** | 104.3±31.8 | 47.3±18.3 | 27.8±16.0** |
| 24 | 422.5±136.5* | 159.8±120.1 | 32.4±8.7 | 14.2±4.9 | 4.6±2.5 | 13.5±3.1 | |
|
|
4 | 30.0±26.0 | 4.3±3.8 | 151.8±44.4* | 13.9±7.4 | 6.3±2.1 | 2.2±2.0 |
| 24 | 157.7±121.2 | 18.2±14.9 | 8.3±1.7 | 3.1±3.6 | 0.7±0.9 | 4.3±1.7 | |
|
|
4 | 43.4±18.8 | 3.0±5.2 | 73.1±36.0 | 34.9±12.4 | 61.1±65.1 | 1.5±0.5 |
| 24 | 28.5±28.0 | 0.7±1.2 | 8.4±4.0 | 7.6±10.0 | 1.4±1.5 | 0.4±0.7 | |
|
|
4 | 874.8±339.3*** | 369.8±221.1*** | 114.3±41.2 | 221.6±130.2*** | 544.1±202.3*** | 47.7±19.1*** |
| 24 | 430.4±139.4** | 119.7±56.5 | 10.0±6.2 | 8.0±7.3 | 6.4±2.2 | 8.0±4.1 | |
|
|
4 | 398.2±111.0* | 206.4±110.8 | 100.5±73.8 | 110.0±79.1 | 299.0±312.4* | 24.1±3.4** |
| 24 | 226.2±61.4 | 75.6±44.9 | 13.3±10.2 | 6.1±7.2 | 7.1±3.4 | 9.7±2.8 |