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Showing posts with label Atuplex. Show all posts
Showing posts with label Atuplex. Show all posts

Monday, January 27, 2014

Silence Therapeutics DACC Lipoplexes for Lung Endothelial RNAi Delivery

After having shown for some time now deep and long-lasting gene knockdown in lung endothelial cells, Silence Therapeutics has finally published (Fehring et al. 2014) more detailed chemical and pharmacokinetic information on the DACC formulation.  This formulation could be useful for indications such as cancer involving the lung and acute lung injury.


Chemistry: cholesterol replaces helper phospholipid DPhyPE

Atuplex has long been the workhorse delivery technology of Silence Therapeutics.  Atuplex has been shown to target pretty much all vascular endothelial cells independent of tissue/organ system and enables the company's lead candidate, Atu027 for the prevention of cancer metastasis currently in phase Ib/IIa in combination with gemcitabine in pancreatic cancer.  Unlike the four-lipid formulation pioneered by Tekmira, Atuplex consists of just three lipids:

-          the cationic lipid AtuFECT01 for cell attachment and penetration (proprietary);
-          a pegylated lipid to prevent aggregation;
-          and the helper phospholipid DPhyPE for structural stability.

To my surprise, the DACC formulation contains the same cationic and pegylated lipids as Atuplex.  The main difference is in replacing the helper phospholipid DPhyPE with another helper lipid, in this case cholesterol.  With this change (and some adjustments in the lipid ratios), 40% of the DACC ends up in the lung with the concomitant silencing of genes in resident endothelial cells.

Silence Therapeutics’ strategy of utilizing a given cationic lipid in new lipid combinations therefore stands in contrast to previous efforts by the likes of Tekmira and Dicerna which have focused on the discovery of new cationic lipids to increase potency and the therapeutic index.


Rationale of DACC over Atuplex for lung endothelial RNAi not fleshed out

Although the new research clearly shows that the lung is the most important physical sink for DACC, the study did not investigate whether this translates into a tissue-specific knockdown effect as well [correction 28Jan14: Figure 4 of the paper does show preferential knockdown in endothelial cells of the lung versus other tissues].  This would be an important additional safety-related rationale for using DACC over Atuplex for lung endothelial gene knockdown, especially for target genes that might have critical functions in normal physiology as well. 

Atuplex, in contrast, has previously been shown to mediate lung endothelial gene knockdown, not just in mice (as DACC in this study), but also non-human primates.  What is more, the previous Atuplex studies showed comparable (~70-80%) knockdowns at ~10-fold reduced dosages (0.3mg/kg vs 2.8mg/kg).  It will therefore be important to test whether lower dosages are feasible for DACC knockdown in non-human primates, potentially with the use of slow infusions instead of bolus injections as was the preferred method in the present study.  And as is my pet peeve when it comes to Silence’s delivery technologies, why not attempt them with other, non-AtuRNAi trigger technologies when a factor of 2 could make all the difference in whether you have an acceptable therapeutic window or not.   


It should be noted, however, that unlike Atuplex, DACC appears to have a more reliable dose-response and seems to be tolerated at up to 6mg/kg so I trust that Silence has good reasons for choosing DACC for programs such as acute lung injuries (ALI). Based on the data revealed by the company thus far, it appears that the ALI candidate Atu111 is the prime candidate to be Silence's next clinical development candidate.

Monday, October 1, 2012

Roche Reveals Antibody-Targeted DPC and SNALP Data


Arrowhead Research has stated that it is about to lift the veil on the RNAi Therapeutics research at Roche through a number of publications.  As you remember, Arrowhead Research made a daring splash a year ago when it acquired much of the Roche RNAi assets for about a cent on the dollar invested in RNAi Therapeutics by Roche.  I will be covering the revelations on this blog as I had once considered Dynamic PolyConjugates one of the more promising systemic RNAi delivery technologies- albeit at least 3-4 years behind Tekmira's SNALP technology in terms of clinical translation and validation.

It was actually Roche (and not Arrowhead/Madison) that fired the opening shot with a study on the use of bispecific antibodies for targeted siRNA delivery (Schneider et al. Molecular Therapy- Nucleic Acids: Targeted siRNA delivery and mRNA knockdown mediated by bispecific digoxigenin-binding antibodies). 

Antibody-targeted siRNA delivery has been a concept that has been around for a while.  The overall industry sentiment on this topic is that while it is still worthwhile pursuit, there have been problems with replicating some of the early data concerning simple antibody-siRNA conjugates and electrostatic complexes.  Stability and cytoplasmic penetration have been the two main issues.

The latter obstacle was also encountered when Roche simply added siRNAs conjugated to digoxigenin (DIG) to a bispecific antibody recognizing both the small molecule DIG (thereby binding the siRNA) and a cell surface protein: the siRNA was specifically delivered to the cell expressing the cell surface protein, but there was no gene silencing, presumably due to lack of endosomal escape into the cytoplasm.

This, of course, is not all that surprising, although, in all fairness, it is not just the old antibody-siRNA literature, but also work from the aptamer-siRNA field and the GalNAc data by Alnylam that suggest that certain cell surface receptor uptake pathways allow for such simple delivery.

To further facilitate gene silencing, the bispecific antibody technology was then applied to DPCs and SNALPs by  linking DIG to the polymer backbone (DPC) and PEG-lipid (SNALP), respectively, with the siRNA either covalently bound to the backbone or enclosed in the aqueous SNALP interior.  The masked cationic polymer in the DPC and the cationic liposomes were thus tasked with overcoming the endosomal release challenge.


Targeted SNALPs for Gene Knockdown in Vascular Endothelia

Indeed, gene silencing could now be observed in tissue culture with both approaches.  Next, the authors tested out the concept in the much more challenging in vivo animal setting.  Data for the targeted SNALPs were reported.   

Mouse seeded with human tumor cells were administered SNALPs (employing Tekmira’s ’57.1’ formulation ratio, KC2 ionizable lipid, and in-line mixing) targeted towards the VEGFR2 receptor that is abundantly expressed on the endothelial cells of the vasculature.  Impressively, such constructs not only maintained the expected endothelial silencing efficiency of SNALPs, but greatly enhanced it: a 40% versus almost 80% gene silencing of the CD31 endothelial marker gene.

Endothelial cells are a good initial target cell population for this approach as these complex, and rather large (>100nm) nanoparticles have easy access.  The approach also does not rely on positive charge for cellular uptake which could be a safety advantage over competing approaches.

The reason why the performance of DPCs in this model was not described is unclear.  It is possible that DPCs simply did not work.  It is also possible that Roche did not want to steal Arrowhead’s thunder and held off on publishing the data.  Pointing in that direction was the fact that the siRNA sequence and, more importantly, modification was not described in the paper.  Not only would this have been crucial for interpreting the innate immune stimulation data (it seemed to be absent), but also an important factor when it comes to uptake that involves the direct exposure of the siRNA to endosomal endonucleases.

Overall, it was a fun paper to read and quite a bit more innovative than many of the RNAi research that has been conducted by Big Pharma bar Merck. Antibody-targeted RNAi delivery is certainly not dead. The cationic lipoplexes by Silence Therapeutics could get competition, although Atuplex enjoys a considerable, multi-year head-start.



Comment on Last Week’s ‘Patent Victory’ by Alnylam

Last week, a US judge ruled that, based on the contracts between Alnylam and Tekmira, Alnylam has standing in enforcing certain exclusively licensed patents.  Tekmira tried to duck this infringement lawsuit by claiming that as the licensor of these patents, it was immune from such enforcement.  The judge disagreed saying that such immunity should have been explicitly stated in their agreement.  In my opinion, this technical decision is not entirely surprising.  All it means is that the case will now be tested in more detail, representing another cash drain on Tekmira.  That financial pressure is Alnylam's main aim in filing the lawsuit is also shown by the company expanding the case into Canada, where Tekmira actually conducts its business.

The ruling does not, however, predict whether Alnylam will prevail on the merits.  This should boil down to the question of whether Alnylam’s right to the patents extend to target validation and not just RNAi therapeutics.  As the Alnylam field is defined as “the treatment, prophylaxis and diagnosis of diseases in
humans using an RNAi Product or miRNA Product", it obviously does not.  

The decision also does not reduce the damage that Tekmira could claim as part of the much more important Trade Secret litigation where Tekmira has charged financial damage arising from Alnylam trying to cut out Tekmira from the financial benefits of SNALP, e.g. when dealing with Big Pharma companies such as Takeda and Novartis.  I do not recall that Tekmira accused Alnylam of making it impossible for Tekmira to close RNAi Therapeutics deals directly with Big Pharma, without Alnylam.  An important distinction.

Monday, October 24, 2011

Silence Therapeutics Finds another Cancer MicroRNA Therapeutics Partner

It’s actually very simple, and apparently it is small biotechnology companies that are first to realize and act on it: Develop a technology that can deliver small silencing RNAs to a given cell/tissue type, and only our exploding insights into the genetics of disease set the limit for the number of potential indications. This benefits both the delivery company that can re-coup some of their investments through licensing out its technology for a few of the many possible targets, and also the licensee which does not need to exhaust and risk its capital to develop its own delivery technology, but can focus on their targets and pick something already fairly de-risked off the shelf for what should be reasonable financial terms at this juncture.

This must have been the reason why Mirna Therapeutics, after apparently having given up on neutral lipid emulsion technology it had developed with BIOO Scientific (LANCEr), has now chosen to partner with Silence to evaluate that company’s endothelial cell-directed AtuPLEX delivery system, which has already shown some promising results in the clinic (see ASCO 2011 presentation), and Silence’s more novel DBTC delivery system for hepatic nucleic acid delivery, for use with its MicroRNA Therapeutic payloads (most likely mimics) to treat cancer. This follows similar deals last month with Dutch cancer MicroRNA Therapeutics company InteRNA, and a collaboration with a mysterious ‘Top Ten Pharma’ (most likely Takeda) concerning the AtuPLEX-related DACC delivery system for lung endothelial cell-directed siRNA delivery.

Whether all these deals will pay off for Silence and their partners now depend on their progress in the lab. It is likely that the work with Mirna Therapeutics will involve miR-34 which is a well validated tumor suppressor microRNA, and has also been implicated in angiogenesis, making it an interesting microRNA mimic to be evaluated with Silence’s lipid-based delivery systems.

As I’m writing this, Arrowhead just announced that it has acquired Roche’s RNAi assets…deal activity in RNAi Therapeutics is clearly heating up again!

Tuesday, September 27, 2011

Silence Therapeutics Signs Lung Delivery Deal with Mystery Partner

As Tekmira is struggling to regain possession over its delivery technology from mighty Alnylam, it is foremost Silence Therapeutics' business development that is benefitting from having one of the most advanced, clinically tested, and commercially uncontested systemic delivery technologies in RNAi Therapeutics. Less than a month after closing a deal with Dutch company InteRNA under which Silence’s AtuPLEX lipoplex delivery technology will be evaluated for the delivery of microRNA cancer therapeutics, the company has just announced another delivery collaboration, this time for the related DACC delivery system. Like AtuPLEX, DACC targets vascular endothelial cells, but unlike AtuPLEX it does so with a high preference for the vascular endothelia of the lung.

Curiously, the identity of the partner was not disclosed, although it was mentioned that it was a ‘Top 10 Pharma Company’. 'Top 10 Pharma Company'....didn't Takeda just become Number 10 with the acquisition of Nycomed? Moreover, the Nycomed acquisition included a fresh COPD drug, a pulmonary disease with an inflammatory component for which the DACC delivery system could very well be useful.

You can imagine that Takeda is a bit hesitant to talk about RNAi Therapeutics, maybe having overpaid a bit for what Alnylam really sold them, but with their significant investment in RNAi already it has every incentive to get things moving while Tekmira and Alnylam are fighting it out. Maybe following this rationale, Takeda and South Korean company Samyang announced earlier this year a somewhat surprising delivery collaboration.

The press release also noted that it is the partner that will provide the RNAi triggers. This pretty much excludes Silence’s existing Big Pharma partners AstraZeneca and Dainippon Sumitomo, the latter of which is not a Top 10 Pharma anyway. On the other hand, Takeda licensed RNAi triggers from Alnylam only for the metabolic and oncology fields, something that would probably add to the apparent sensitivities. I highly doubt that Takeda will hand over another $50M to Alnylam for pulmonary.

Of course, it is always possible that RNAi Therapeutics has gone so much out of fashion that Big Pharma companies are embarrassed to be publicly associated with it. Not only that, their investors shun the word ‘Research’ like the plague.

More seriously, the data that Silence reported for the DACC system has been quite impressive. Working on a model for acute lung injury, it has demonstrated potent and persistent gene knockdown in the pulmonary vascular endothelium following a single intravenous administration. While less is known about the clinical safety profile of DACC, it can be considered somewhat de-risked by the fact that its chemistry seems to be very similar to the clinically proven AtuPLEX system (see the highly encouraging safety profile of their phase I Atu027 clinical candidate so far).

Monday, September 12, 2011

MicroRNA Therapeutics Company InteRNA Technologies Selects Clinically De-risked AtuPLEX Delivery Technology

Silence Therapeutics and InteRNA Technologies announced today the signing of a collaboration agreement following which the companies will use the endothelial cell-directed AtuPLEX gene knockdown delivery technology for the development of microRNA cancer therapeutics.


The news comes as Atu027, Silence’s RNAi Therapeutics candidate in oncology which also uses AtuPLEX delivery technology, is about to wrap up phase I studies (enrolment to complete by year-end at current rate of recruitment, with follow-up putting data announcement 3 or 4 months after that). Importantly, this study suggests a quite promising safety profile for AtuPLEX with apparently no dose-limiting toxicities so far as doses reach levels where meaningful gene knockdown in endothelial cells can be expected based on the pre-clinical rodent and non-human primate studies.

The deal makes sense to both Silence Therapeutics and InteRNA Therapeutics.For Silence Therapeutics, it is a quite obvious and facile monetization opportunity of its already established AtuPLEX technology with a nucleic acid payload (microRNA mimics discovered by InteRNA) where it does not have a core interest. For InteRNA, it promises to speed up its clinical development efforts as the safety of AtuPLEX has been considerably de-risked by now in the clinic and a lot of the learnings of AtuPLEX, also with regard to regulatory issues, should be applicable to the envisaged microRNA Therapeutics. In this regard, InteRNA may be different from some other microRNA Therapeutics companies that intend to do the heavy lifting of bringing a new small silencing RNA systemic delivery technology into the clinic.


Consequently, I consider this collaboration a win-win for both companies, even more so in financially constraint times. There is considerable synergies to be gained if companies would think more about how they could use their respective strengths to help each other develop promising therapeutic candidates instead of trying to do everything themselves and replicate the mistakes of others.

Thursday, September 8, 2011

Tekmira’s SNALP Delivery Technology Yields yet another Development Candidate: ALN-APC for Hemophilia

You will see this theme continue: Systemic RNAi delivery technologies that have proven themselves in non-human primate and clinical studies will continue to yield pipeline candidates and attract potential partners. Today’s announcement by Alnylam at the Annual OTS Meeting that it has chosen SNALP-enabled ALN-APC targeting the liver-expressed Protein C in hemophilia as its 5x15TM development candidate no. 4 confirms this.

As a reminder, and despite of Alnylam’s claims of SNALP being only one of its many systemic delivery options, all four of Alnylam’s nominated 5x15TM candidates are based on Tekmira’s SNALP technology, which also means that 5 out of 6 of Alnylam’s development candidates are SNALP-based (in temporal order): ALN-VSP02, ALN-TTR, ALN-PCS, ALN-HPN, ALN-APC. Only Alnylam’s (historical) first candidate, the aerosolized naked and unmodified ALN-RSV01 is not a SNALP product. Add to this Tekmira’s own TKM-ApoB, TKM-PLK1, and TKM-EBOLA development candidates, and one can see the promise of RNAi Therapeutics become reality [correction September 9, 2011: the Huntington's program should have been noted here, although that one in some regards is quite similar to ALN-RSV01].

ALN-APC is indicated for the treatment of hemophilia patients, especially those that have developed resistance to their first-line therapy in the form of inhibitory antibodies against their recombinant protein replacements. As activated Protein C shifts the hemostatic balance towards bleeding, knocking this exclusively liver-expressed gene down is predicted to reduce the propensity of hemophilia patients to bleed. This, importantly, is also suggested by human genetics as there are apparently hemophilia patients that have a genetic resistance against or deficiency in Protein C, and consequently have less frequent bleeding compared to hemophilia patients without these concomitant mutations. Boding well for the safety of this approach, especially a concern when one starts to meddle with coagulation, these patients do not have a known increased risk of thrombosis.

Tekmira’s SNALP technology, as predicted based on strong science, is leading the way in this pipeline expansion paradigm by targeting particularly liver, but also solid tumor-expressed genes in a variety of diseases. The only other systemic RNAi delivery technology that has about reached the stage where one can feel comfortable similarly entering new pipeline candidates is Silence Therapeutics’ Atuplex technology for knocking down genes in vascular endothelial cells.

RNAi Therapeutics development does not have to be complicated. The simple trick is to let science lead the way…

Wednesday, October 13, 2010

RNAi Delivery to Vascular Endothelium Increasingly Validated

Less than a month after Napoleone Ferrara from Genentech was recognized with a 2010 Lasker Prize for identifying VEGF as the central actor in blood vessel formation, a prize widely regarded as the stepping stone towards the Nobel Prize in Physiology or Medicine, a press release by Alnylam seems to suggest that RNAi delivery to the vascular endothelium is appropriately reaching critical mass. Before that, the most important body of work in this area probably came from Silence Therapeutics, which, despite its apparent quality, got me a bit worried given what I perceived as a certain lack of enthusiasm in the commercial RNAi Therapeutics space and, more importantly, third party scientific validation.

It is particularly exciting that the silencing of endothelial gene markers following a single dose persisted for two months. Since the duration of silencing is critically dependent on the cell type, for example its proliferation rate, this bodes very well for all delivery technologies targeting the vascular endothelium.

Alnylam mentions that the new LNPs (liposomal nanoparticles) that work for endothelial siRNA delivery stem from their collaboration with the MIT which as we know has involved positively charged ‘lipidoids’. Seen in light of the data by Silence (cationic lipid-siRNA)/Intradigm (RGD-targeted PEI polymers), the picture that is emerging is that LNPs that comprise positively charged lipids have a natural propensity of being taken up by vascular endothelial cells. Although I haven’t seen the details yet, it is to be expected that a number of parameters beyond positive charge, such as the method of formulating the particles, e.g. SNALP-like siRNA encapsulation versus Atuplex-like lipoplex formation, determine the efficiency of the functional uptake of these particles.

Beyond Alnylam and Silence Therapeutics, which with Atu-027 already has an endothelial cell-targeting RNAi Therapeutics in the clinic, Tekmira should also have considerable expertise in this area. Similar to optimizing LNP delivery to the liver, leadership in endothelial RNAi will depend on first empirically determining the structure-function relationships of these particles and then the biological pathway by which the uptake occurs. To my knowledge, it is still unclear whether receptor-mediated uptake, non-specific macropinocytosis ('cell drinking'), or the limited capacity of endothelial cells for phagocytosis is involved. This will also be important to understand as more targeted technologies will be developed.

One trade-off that current technologies might suffer from is that their positive charge at physiological pH may cause them to be slightly more toxic compared to negatively or neutrally charged formulations. This may also tie in with Phil Haworth’s comments in my last interview with him that Silence Therapeutics will initially focus on acute indications with high unmet needs. But again, everything is toxic at sufficiently high concentrations and it is encouraging that Atu-027 is still in its dose-escalating phase according to the last clinical update by the company.

Progress also reported for systemic RNAi delivery to immune cells

Following up on their declared pursuit of vaccine opportunities, Alnylam also highlighted progress in the systemic delivery of siRNAs to immune cells. Previously, LNPs comprising lipids derived from the KC2 series of next-generation ionizable lipids had been described to silence the immune cell marker CD45 with an ED50 of approximately 1mg/kg following intravenous administration (see RNAi delivery roundtable). The new report suggests some improvement over those formulations, stating that a 95% knockdown of CD45 was achieved, with an ED50 of as little as 0.2mg/kg. It will be very interesting to see the scientific details and discussions on these experiments (note: this last paragraph was corrected from an earlier version that mistakenly stated that the 95% knockdown was achieved with 0.2mg/kg).

Uptake of RNAi triggers by immune cells per se is not entirely new. It is a case of turning lemons into lemonades, as the non-specific uptake of nanoparticles by phagocytic cells has been long lamented. However, these cells play a central role in at least as many important diseases as endothelial cells do- so why not harness the efficient uptake of particulates in those cells for therapeutic purposes? Sure, being taken up and being functionally released into the cytoplasm are 2 separate issues, but Tekmira’s Ebola work has shown already that LNPs can trigger gene silencing in macrophages. Again, it will be important to delineate the functional uptake pathways and to employ chemistry to increase the efficiency with which LNPs can harness them.

Once thought of as liver-only formulations, LNPs are showing more and more their considerable versatility. I remember well a talk given by Tekmira’s CSO Ian MacLachlan at Stanford two years ago when he demonstrated that by even only slightly changing the formulation parameters, strikingly different patterns of biodistribution can be achieved. Now it ‘only’ takes one of the LNP/SNALP programs in the clinic to show some efficacy, and the pharmaceutical industry to change its approach towards drug target selection, for the liposome to finally shed its image as the unloved, but necessary stepchild of the industry.

Wednesday, February 3, 2010

For Silence Therapeutics’ Atu-027 Cancer RNAi Therapeutic, the Proof is in the Pudding, not the Theory

This is the second part of the three-part series in which Tobias Wolfram and I are looking at the scientific merits of the first three notable RNAi Therapeutics candidates that have entered the clinic for solid cancer indications. Solid cancer is arguably the one therapeutic area where RNAi Therapeutics currently have highest value because of a) the ability to target many of the important, but otherwise undruggable cancer-related genes; b) systemic delivery technologies that ought to be able to reach solid cancer tissues; and c) a patient population that is essentially indifferent to the exact mode of administration (e.g. oral vs intravenous infusion).

In Part I of our series we looked at Calando’s CALAA-01. We came out slightly disappointed with that program because it seemed stuck in the quite early, non-biological/physico-chemical characterization stages and did not provide too much bona fide evidence of anti-cancer activity in pre-clinical animal models. Neither was Calando’s RONDEL delivery technology convincingly shown to facilitate in vivo gene silencing in the first place. We are therefore relieved, and I personally also somewhat pleasantly surprised at the same time, to be able to report a considerably better validated cancer RNAi Therapeutics candidate in Silence Therapeutics’ Atu-027. While the precise theory behind Atu-027 remains somewhat uncertain, we are encouraged by the scientific rigor with which the target had been validated as a component of the well known PI3-kinase pathway and the careful demonstration that lipoplex-siRNA delivery can be used for knocking down genes in the vascular endothelia from mice to monkeys.

The Target: PKN3, a Downstream Component of the Cancer-related PI3K pathway

The precursor of Silence Therapeutics, Atugen AG, was a child of the millennium genomics era involved in gene discovery and target validation. The technological workhorses underlying this work were a combination of gene knockdown approaches such as ribozymes, antisense (‘GeneBlocs’), expressed RNAi that were combined with RNA expression analysis and proteomics.

For some reason that may be related to the prior training of Atugen’s scientific staff, Atugen specialized in studying the genetic components of the PI3-kinase pathway. This pathway has attracted wide attention because it plays important roles in various biological processes and has consequently been implicated in numerous diseases, particularly in cancer where a number of genetic abnormalities that affect a range of phenotypes ranging from cell growth to metastasis have been linked to it. While clearly an attractive target for cancer therapy, and there has been some success in drug development in that regard, its many roles in molecular biology means that targeting the pathway upstream, for example at the PI3 kinase level, is likely to be associated with a poor therapeutic index. Atugen therefore reasoned that discovering targets downstream of PI3K could result in equally potent, but also more specific therapeutics for cancer.

Applying their genomic tool kit that placed a high priority on specificity controls, they came up with a handful of candidate target genes that they then nicely validated in subsequent in vitro and in vivo tumor-related assays. From this, PKN3 eventually emerged as a gene whose expression and phosphorylation was not only PI3 kinase-dependent, but when knocked down also abolished the ability of PI3 kinase-activated cancer cells to grow under culture conditions thought to reflect the natural tumor environment. When such cancer cells were modified with a DNA-directed RNAi construct against PKN3 and then introduced into mice in an orthotopic prostate tumor model, the primary tumor formation was, somewhat unexpectedly, not much affected whereas metastasis formation was significantly inhibited. Thus, the authors speculated that it is PI3 kinase-dependent functions like cell motility and/or cell-cell/cell-matrix contacts that are disturbed following PKN3 knockdown, and that the substrate-dependent growth defect observed in vitro may reflect deficiencies in tissue invasion that are shared with the facilitate metastasis in vivo. Consistent with a role for PKN3 in real-life cancers, tissue immunohistochemistry from prostate cancer patients revealed PKN3 to be upregulated in the cancer, but not surrounding normal tissue.

The theory of why PKN3 RNAi might have utility as a cancer treatment had to be modified when it was found that the delivery system did not target the cancer cells in which the initial target validation experiments had been carried out, but instead endothelial cells of the blood vasculature. The late change in the theoretical framework for Atu-027 that occurred in the otherwise very impressive 2009 landmark Atu-027 mouse-to-monkey validation study (Aleku et al., 2009), is probably the major weakness in Atu-027’s rationale. The question arises why take such a target risk at all when there are many other well-validated, but undruggable cancer targets already out there to choose from? Is PKN3 a suitable cancer target after all, and, even if it were, are they knocking it down in the right cell types? It is here that the relative lack of knowledge on the biology of PKN3 (all the functional studies on this gene were conducted by Silence Therapeutic) turns out to be a disadvantage and may complicate things like the development of biomarker tests to monitor early clinical efficacy.

On the other hand, the fact that PKN3 emerged after having considered a range of targets, suggests that based on practical experience Silence had highest confidence in the effectiveness of PKN3 as a cancer target. This argument is supported by what Tobias and I felt to be very well controlled target validation experiments, including the use of multiple positive and negative control oligonucleotides to confirm that the observed phenotypes were on-target. In that regard, I would score the relevant dataset generated by Silence in the top 5% of the RNAi literature. Maybe not surprising because of Silence's roots in gene discovery.

Being the only one working on a gene, however, has a few benefits, too. As such, Silence has made inroads in obtaining broad patent protection for the use of PKN3 as a target in PI3 kinase-related diseases. Given the large interest in the PI3 kinase pathway, this could be a valuable asset to the company and somewhat further justifies what otherwise would look like a disproportionate investment for a platform company into a single pathway!

The RNAi Trigger: A 23 base-pair Atu-siRNA

Although Atugen’s background was more in ribozymes and antisense, it decided to make drugs based on synthetic siRNAs after its transformation into a drug development company. This was around the time that RNAi had just been discovered in humans by Tuschl. In the case of Atu-027 this meant that while antisense, expressed RNAi, and small molecules acting on the PI3 kinase pathway were used for target validation, the active ingredient would be a 23 base-pair blunt-end siRNA in which alternating 2’-O-methyl nucleotides would face unmodified residues, a pattern that also coincides with the eventual scope of the issued Atu-siRNA patents in the US and Europe.

Since siRNAs may have anti-tumor activity independent of RNAi, the result of non-specific innate immunostimulation by some siRNAs, it is notable that such extensive 2’-O-methylation was shown only later in the field to result in siRNAs with no or very little innate immunostimulatory potential. This not only lends credibility to their pre-clinical efficacy data, the choice of 2’-O-methylation at such an early stage can therefore be more generally regarded as a very lucky one considering that the scope of the Atu-siRNA patents would eventually only encompass 2’-O-methylations. Speaking of RNAi trigger IP, a strong Tuschl II would actually benefit the blunt-end Atu-027, while a strong 21-23 base-pair/nucleotide covering Tuschl I could cause problems.

Lipoplex-siRNA Delivery to Endothelial Cells of Blood Vasculature

The delivery system for Atu-027 was developed in parallel to identifying the target siRNA. It is a pegylated lipoplex-siRNA system where the siRNA sits on the outside of positively charged, peylated liposomes ('Atuplex'), instead of the more commonly used SNALP-like liposomes where the siRNA is encapsulated inside. Because of this fundamental difference, the two systems vary considerably in their biological properties. Whereas SNALPs deliver their cargo mainly to the liver, but can be further stabilized to reach tissues beyond that, lipoplex-siRNAs have a preference for the endothelia lining the inside of blood vessels pretty much throughout the body.

In careful labeling studies, Silence Therapeutics scientists were able to show convincingly that they can achieve bona fide RNAi knockdown in the 50-70% range when administering around 1mg/kg- from mice to monkeys. Moreover, the invariable pharmacokinetics following repeat administration support that there is little or no cytokine activation. It is curious that most of their in vivo studies involve repeat administration. This is in contrast to what for example Tekmira and Alnylam are practicing which carefully study both single and repeat administration both of which together should inform much better on eventual dosing schedules, causes for toxicities etc. Similarly, only one cationic lipid, AtuFECT01, is used throughout the years, and a relatively simple opportunity to improve the therapeutic index has probably been missed. There is also a lack of a detailed description of the precise formulation process and early-stage physico-chemical characterization, although part of this may be for competitive reasons.

Apparently limiting themselves to delivery systems developed in-house, the performance of the lipoplex-siRNA technology means that in order for Silence to pursue their long-standing interest in cancer, they have to address the disease where it interfaces with blood vessel endothelia. Importantly, the concept of starving cancer cells by inhibiting neoangiogenesis is well accepted and one only has to look at the commercial success of Roche/Genentech’s anti-VEGF monoclonal antibody Avastin. The more pressing task therefore is to find the right target genes.

Pre-clinical safety and efficacy

The lipoplex-siRNA formulations were generally well tolerated at dosages predicted to be therapeutic. No significant differences in body weights were observed with various siRNAs. Immune responses were also not detected. This is particularly important in studies like these as it further suggests that the observed anticancer activity was not due to an off-target immune-related mechanism. Further supporting such a lack of immune responses was, as noted above, the fact that the pharmacokinetics did not change with repeat administration. Immune reactions would have likely facilitated antibody formation against the PEG component and caused rapid clearance of the lipoplex-siRNA upon repeat administration. I originally had been skeptical of Silence’s claims that there were no immune issues since they never seemed to have paid much attention to this issue, but they may have just gotten lucky in their early choice of extensive 2’-O-methylation as part of the Atu-siRNA architecture.

There were, however, some toxicities noted that mostly involved the liver and included 2-3 fold minor elevations in liver enzymes with an PTEN siRNA (this could be an siRNA-specific response different from Atu-027) and an apparent increase in DNA replication in livers of mice treated with control lipids alone which may be indicative of liver cell damage (Santel et al.,2006). Liver safety and immune reactions may therefore be the two expected dose-limiting adverse events for Atu-027.

In terms of efficacy, Atu-027 had ED50s in mice and monkeys of 1 and 0.3mg/kg using liver and lung endothelia as surrogate tissues. Since the samples include non-endothelial contaminants that could express some PKN3, this may actually somewhat underestimate the true extent of the knockdown in the target endothelial cells. This knockdown efficacy translated into a 60% reduction of the primary tumor in an orthotopic mouse prostate cancer model, and an even greater 80% reduction in the lymph node metastases. It should be noted that while the effect on the primary tumor is to be welcome, the results somewhat differ from those in the initial characterization of PKN3 as a target 5 years earlier where an effect was only observed for the metastases (Leenders et al., 2004). The anti-tumor response was confirmed in a range of other tumor models. Taken together, the safety and efficacy profile of Atu-027 are in support of initiating phase I studies.

Target and Delivery: A match made in heaven, or marriage of necessity?

As alluded to in the target validation segment, we are somewhat concerned about target risk since, as a result of the emerging properties of the lipoplex-siRNA system and in vivo PKN3 knockdown phenotypes, the rationale for PKN3 as an anticancer target has undergone multiple transformations, first validated as playing an important role in the cancer cells itself, but then thought to act directly on blood vessel and eventually lymph vessel formation.

Cynics could say that once they got stuck with the lipoplex-siRNA system, they would have done anything to force the model to fit their data. Realizing this dilemma, they did, however, undertake bridging studies and were for example able to show that PKN3 knockdown in isolated (non-cancer) vascular and lymphatic endothelial cells disturb well known endothelial phenotypes such as ability to form tubes in tissue culture.

Despite these twists and turns, from a 30,000 foot level, PKN3, due to its well-validated role in the PI3 kinase pathway, does look like a credible anticancer target in endothelial cells. Are there potentially targets that are better suited for the lipoplex siRNA system? Most likely yes, as it ought to be a general rule in RNAi Therapeutics that ‘target follows delivery’. Thus armed with knowledge about the ‘Atuplex’ delivery system, the next target-delivery combination by Silence has a better chance of looking like a match made in heaven.

Conclusion

In the end, we came to the conclusion that, theoretical concerns notwithstanding, by targeting a skillfully validated PI3K pathway gene with a delivery system that facilitated bona fide gene knockdown from mice to monkeys and the clear anticancer phenotypes observed in a number of rodent cancer models, Atu-027 is a promising clinical candidate for which the pre-clinical proof was simply in the pudding. Given the pioneering and innovative nature of this particular approach, it should also be able to draw the attention of the likes of Novartis and Pfizer that should be able and willing to take such risks as they move into RNAi Therapeutics.

Atu-027 may also be viewed as the start of a franchise that focuses on attacking cancer from its endothelial side with all the unique advantages of RNAi, for example the almost unlimited choice of targets. The merger with Intradigm, which also has developed expertise in neoangiogenesis and cancer, should add depth to this by, most importantly, expanding the pool of potential targets and pathways so that potentially less risky target-delivery matches can be found. There should also be ample scope for improving the Atuplex delivery system as it is questionable whether the first cationic lipid that they published and held onto, Atu-FECT01, is really the non plus ultra of lipid chemistry.

Meanwhile, Atu-027 has started clinical development half a year ago with a multi-dose phase I study in patients with advanced solid tumors. First results are eagerly awaited.

By Dirk Haussecker. All rights reserved.

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