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Showing posts with label Dicer-substrate RNAs. Show all posts
Showing posts with label Dicer-substrate RNAs. Show all posts

Thursday, February 2, 2012

Alnylam Squares Off with Dicerna

Dicer-substrate RNAi triggers are often seen as a (probably cheaper) alternative to Tuschl siRNAs. Initially, based on a small sample size, it was even claimed that Dicer-substrates had superior potencies and prolonged durations of knockdown. Of course, Alnylam, considering Tuschl siRNAs to be its property, has recognized this and regards Dicer-substrates along with its corporate champion, Dicerna, a competitive threat. Although Alnylam has long claimed that Tuschl siRNAs are preferable over Dicer-substrates for various reasons, until now it has largely been Dicerna’s word against Alnylam’s word.

This has changed with a publication by Alnylam in the journal RNA which provides a comprehensive, and I believe fair comparison between the two structures (Foster et al 2012). Comparing large numbers of RNAi triggers both in vitro and in KC2-SNALP animal studies, the study shows that Tuschl siRNAs and Dicer-substrates are essentially equivalent in terms of potency and the duration of knockdown. However, when these structures are compared in terms of innate immune stimulation, Tuschl siRNAs had a very slight edge when unmodified sequences were tested. Of course, it is well recognized that chemical modifications are required and very effective at abrogating these immune responses. When these were applied, the potencies of Dicer-substrates were more likely to suffer than those of Tuschl siRNAs, and in a few cases innate immune stimulation was not entirely abrogated. The former can be explained by the additional requirement for the Dicer processing step which can be affected by chemical modification.

Overall, this means that it may take a little bit more effort to identify a suitable Dicer-substrate clinical development candidates, and there could be an increased risk in encountering unforeseen innate immune stimulations in humans. On the other hand, the study also suggests that for some genes it may be possible to find more potent RNAi triggers with Dicer-substrates, so that in an ideal world one would keep an open mind. I should also add that, not discussed in this paper, there are also other considerations which may favor one structure over the other.

Unfortunately, we are not living in an ideal RNAi Therapeutics world, but one in which patent trolls and IP freeloaders abound. The timing of the comparison study is particularly ironic since the freedom-to-operate of US-based Alnylam is very much in doubt, thus increasing the attractiveness of Dicerna's offering. This is because of the recent issuance of the Baulcombe patent in the US which has put essentially all the Tuschl siRNA structures, bar one, in a straitjacket. Until Baulcombe is sorted out, all buy-out and partnering efforts will be on hold, and if Merck gets exclusive rights to that patent...then Alnylam may well be toast.

Wednesday, January 6, 2010

2010 in RNAi Therapeutics Starts Off with Big Pharma Validations

If the first week is any guide, 2010 could develop into one of the most interesting years in RNAi Therapeutics history and comes after a somewhat lackluster 2009. Both the Dicerna-Kyowa Hakko platform collaboration announced earlier this week and the pre-IND milestone payment Alnylam received today from Big Pharma partner Roche are important proof-points that Big Pharma/Biotech (BBP) continues to invest in RNAi Therapeutics.

The Roche payment due to the initiation of IND-enabling studies marks the first time that a BBP is close to entering the clinic with its in-house developed RNAi Therapeutics candidate. The strength and clinical value of Alnylam’s strategy to further monetize on its mainly RNAi trigger IP has been increasingly questioned by skeptical investors as around half a billion dollars in realized IP funding has apparently not been enough thus far for one of its BPP partner to enter the clinic. This event should also be a boost to Tekmira Pharmaceuticals both in terms of platform validation and financially, as Roche has stated before that its first 2 RNAi Therapeutics INDs will involve SNALP delivery and Tekmira stands to collect ~$9M for each of the 2 candidates it helps Roche to get to the IND stage. For speculations about the indication of Roche’s first RNAi Therapeutics candidate, read the recent blog entry here.

While the Roche news is a definite plus for Alnylam, the Dicerna news has somewhat negative implications as it could be interpreted that BPP is becoming more hesitant to pay the Alnylam premium for what had been considered a toll-gate into RNAi Therapeutics. This is particularly so because Kyowa Hakko once paid Alnylam $15M upfront for Asian rights for Alnylam’s lead RNAi Therapeutics program for the treatment of RSV infection, and very little has been heard about the Kyowa relationship after ALN-RSV01 has been dropped as a candidate for development in pediatric populations. [update] However, as a reader rightly points out in the comments section, Kyowa's 'slight' may also simply reflect the fact that Takeda is Alnylam's exclusive Asian platform partner until 2013 and that Kyowa Hakko was sufficiently eager to speed up the development of its internal RNAi Therapeutics efforts by partnering with a pure-play RNAi Therapeutics company such as Dicerna.

Listening to some of Alnylam’s recent comments, especially its more frequent comparisons of RiSC vs Dicer-substrates, it also appears that Alnylam is not claiming to control the IP around Dicer-substrates. dsRNAs of 25bp and longer may therefore be a tempting, cheaper alternative into RNAi Therapeutics. I still believe that while Dicer-substrates are of comparable potency to Tuschl-type siRNAs, they are more complicated and therefore more costly to develop (especially innate immunity and more restricted chemical space due to requirement for Dicer-cleavage), although they these should not be considered show-stoppers and Dicer-substrates may actually allow for unique delivery strategies and in that regard may be considered complementary. The relatively early stage of Dicer-substrates, however, may explain why the immediate financial benefit to Dicerna was limited ($4M upfront, the rest biotech bucks), but should help the VC-stage company to raise further funds.

Price competition in RNAi trigger IP in the face of financially struggling competitors such as Dicerna, recent IP uncertainties, and the relatively increasing value attached to delivery vs RNAi trigger IP may indeed be responsible for Alnylam’s missed guidance of two major deals in 2009. While SNALP/LNP delivery is making great progress, Alnylam may have to offer more high-quality delivery options to further command terms similar to the Roche and Takeda collaborations. The decision of Novartis, which is about to spend $50B on eye-care provider Alcon, to pay Alnylam ~$100M this year for the broad adoption of Alnylam’s full RNAi Therapeutics IP, will be a good indication of the perceived strength of Alnylam’s IP if not the maturity of the technology.

Both the Alnylam-Roche and Dicerna-Kyowa news further underline the strong momentum of liposomal delivery and RNAi Therapeutics for cancer as also indicated by the Silence-Intradigm merger. Liposomal and lipid-based deliveries were highlighted in the delivery capabilities of Kyowa Hakko and Dicerna, respectively, and the first target picked by Kyowa was for oncology. Antibody-directed targeted delivery, also seems to gather pace as Kyowa Hakko further high-lighted such capabilities in the press release ('POTELLIGENT').

The two news items thus should be a good prelude to two other events this quarter that could decisively shift sentiment on the RNA Therapeutics sector into positive territory, namely the clinical trial results from Tekmira and ISIS Pharmaceuticals on their respective ApoB-lowering drug candidates.

Some RNAi Therapeutics Trivia: Dicerna almost appropriately means 'digested' in the Malay language.


Wednesday, November 28, 2007

Alnylam Granted Expanded Kreutzer-Limmer Patent Series in Germany, Signals Its Intention to Enforce Dominant IP Position

Yesterday, Alnylam announced issuance of the new Kreutzer-Limmer patent series in Germany, covering double-stranded RNAs of 15 to 49 base-pairs for gene silencing in mammals. This is quite significant and Alnylam’s accompanying press release made it clear that this should be understood as a watershed event, sending a stern signal to companies like Silence Therapeutics, RXi, Nastech, Dicerna and others that thought to have identified Kreutzer-Limmer as a potential loop-hole in Alnylam’s IP strategy by employing double-stranded RNAs (dsRNAs) longer than Tuschl’s 19-23 base-pair siRNAs and/or making them blunt-ended to emphasize an apparent difference to the classical Tuschl siRNA that features 3’ overhangs. These patent workaround efforts seemed to bear first fruits last year when the original Kreutzer-Limmer I patent series was restricted by the European Patent Office to covering siRNAs between 15 and 21 base-pairs in length (opposing parties: Sirna [now Merck], AstraZeneca PLC, Atugen [now Silence Therapeutics], Janssen Pharmaceutica N.V., and Sanofi-Aventis).

From a partnering perspective, this seemingly small development could have important implications for striking the next major deal, since which company would feel comfortable paying hundreds of millions of dollars for a technology license that appears to be circumventable.

Kreutzer-Limmer was Alnylam’s first line of defense against such blunt-end siRNAs and siRNA precursors longer than 23 base-pairs (aka Dicer substrates) given that, depending on the explicitly granted range of double-stranded RNA lengths, Kreutzer-Limmer would directly cover such structures. Its short-coming, however, is that in 1999, Kreutzer and Limmer did not understand well how these dsRNAs exactly caused gene silencing, which is what Tuschl II is famous for. While I consider Tuschl II, in addition to the ubiquitous Fire-Mello patent, as the fundamental patent series for therapeutic RNAi, due to its excruciatingly detailed explanation of what it takes to effect efficient RNAi in mammalian cells, it is the early priority date of Kreutzer-Limmer’s invention that makes this patent so potentially valuable and dangerous, and explains why Alnylam saw it necessary to remove any uncertainty and obtain exclusive access to it by acquiring Ribopharma AG in 2003.

I found it curious that a number of companies have chosen to take licenses to Kreutzer-Limmer, but not Tuschl II. While that may be interpreted as reflecting the fundamental importance of Kreutzer-Limmer, it was as if by pursuing this strategy, it is almost made implicit that as soon as the scientifically less detailed Kreutzer-Limmer series were curtailed in scope due to heavy opposition, the field for newly patentable RNAi inducers would be wide open. In this case, Alnylam would probably have argued in a second line of defense that, although not spelt out letter by letter, Tuschl II would also cover Dicer-substrate and other RNAi inducers that obviously function either as siRNA precursors (= pro-drugs) or are derived from it, for example 3-stranded siRNAs (meroduplexes). This argument becomes particularly relevant in the case of a weakened Kreutzer-Limmer as this ironically would directly strengthen Tuschl II. In this way, Alnylam holds all the cards and may play them as they wish.

Silence Therapeutics, in particular, will not be very happy with the outcome in Germany, not only because it and others, myself included (to be explained in my next posting), sees itself as a major force in RNAi in Europe, but also since their blunt-end, modified dsRNA is not only the size of the classical Tuschl siRNA, but with Kreutzer-Limmer any gene silencing dsRNA, modified or unmodified, is covered. Silence Therapeutics’ approach could be likened to first taking an invention (here: Tuschl’s siRNAs), then impair its function (here: by flushing the ends blunt), and finally rescue some of the original function by adding further changes (here: by introducing a pattern of RNA modifications). Certainly original, in its own complicated way.

I should disclose here that I largely agree with Alnylam’s view of their IP position and have invested in this company, but at this time I particularly felt like speaking out on all these confusing claims about proprietary RNAi compositions that threatened to hurt investments in RNAi Therapeutics. The acquisition of Sirna Therapeutics by Merck was certainly triggered in part by Sirna’s IP claims which now appear to be weaker than originally hoped for by the buyer and has escalated into a costly and time-consuming mess for a number of companies. In the same vein, I should also emphasize that I am likewise invested in companies that I have strongly criticized in this and other contexts and that I am therefore not wed to any company’s view of the space. It is in this spirit that I hope that Alnylam does not use their IP position to block the evaluation of RNAi inducers that differ from the classical siRNA design in more than just a modification here or an overhang there. Financial incentives should therefore be created for investments in such start-ups without requiring a $1 billion upfront license fee.

PS: In my next posting, barring further developments, I would like to provide the promised company-by-company overview.


Two additional recent developments that I would like to briefly comment on:

1) The FDA removed the clinical hold on Targeted Genetics’ rheumatoid arthritis AAV gene therapy that had been suspected to have played a role in the unfortunate death of a clinical trial participant. I am relieved by this judgment since there was just no good scientific evidence that the gene therapy caused or was associated with the fatality. AAV vectors are currently probably the most potent method to deliver RNAi in vivo and there are a number of indications where AAV-RNAi may be years ahead of synthetic siRNA strategies, and where the benefits outweigh the real risks of gene therapies. One such indication would be AAV-RNAi for treating Huntington’s Disease, where published and orally presented data so far suggests superiority of the AAV approach compared to siRNAs and that Targeted Genetics should now be in a better position to pursue in collaboration with Sirna Therapeutics/Merck and Bev Davidson’s group in Iowa.

2) At a recent symposium on RNAi and its targeting in Sonoma, California, Ian MacLachlan from Protiva presented more data on the efficacy of SNALP-siRNA delivery in non-human primates. According to the abstract, more than 90% gene silencing of ApoB, with silencing lasting for several weeks, could be achieved by single-dose intravenous administration. These are impressive numbers and the task is now to minimize the toxicities associated with cationic liposomes. I am quite impressed by Protiva’s past work not only on RNAi delivery (in collaboration with Sirna Therapeutics and Alnylam), but also on dissecting the causes for the toxicity, and would expect them to be the first to find a solution for this problem. Unfortunately, the ownership and know-how of SNALP delivery technology is highly contested and I can only urge the involved parties to consider working together on this promising technology. During a recent conference call by Tekmira it was apparent that a lack of suitable scientists caused delays in the development of SNALP technology. I would even venture as far and propose that Alnylam’s delays on their systemic delivery programs have probably cost the company more in terms of reagent, labor, time and market cap than the combined market cap of Tekmira and Protiva.

Saturday, November 24, 2007

The Confusing World of AtuRNAi, Stealth siRNAs and mdRNAs (Part II)

(RNAi IP discussion continued from previous entry)

If long dsRNA had worked exactly in humans as it did in the worm and plants, then you would have expected an immediate flood of publications reporting the same. Long dsRNA for gene silencing, however, were impractical for most vertebrate cell applications due to the induction of non-specific cytokine responses that essentially shuts down most gene expression and therefore does not allow for targeted gene silencing. An exception may be embryonal cells which lack an interferon response and for which long dsRNA was reported to induce specific gene silencing first in zebrafish in 1999 (Wargelius et al. Biochem Biophys Res Commun. 263:156) and then in mice (a mammal) in late 2001 by the Filipowicz group (Basel, Switzerland).

These latter findings, however, were overshadowed earlier in 2001 by a publication from the Tuschl group in Germany, representing the culmination of a body of work he first started as a post-doc in the Bartel/Sharp labs during his time at the MIT, and then as an independent investigator at the Max-Planck Institute in Goettingen. While small RNAs were then known to derive from long dsRNAs, their molecular role in guiding the recognition and destruction of target mRNAs was only hypothesized and their structure mostly unknown. A breakthrough towards this understanding came by establishing a biochemical system in Drosophila (fly) lysates that recapitulated RNAi in the test tube (1999, MIT). One year later, they reported that during this reaction both the long dsRNA as well as the target mRNA is cut at 21-23 nucleotide intervals (MIT, 2000), thereby providing a link between dsRNA processing and mRNA targeting. In early 2001, then at the MPI, Elashir and colleagues in Tuschl’s lab further delineated the relationship between dsRNA processing and target mRNA cleavage in the Drosophila system, including the observation that the mRNA is cut around 10 nucleotides from the 5’ end of a 29 base-pair dsRNA (kind of Dicer-substrate). Importantly, by sequencing the 21-23 nucleotide RNAs by borrowing a cloning technique developed for the discovery of microRNAs around the same time, they found that the small RNAs were clustered consistent with long dsRNA processing into 21-23 base-pair DUPLEX RNAs. Moreover, the small RNAs were found to contain 5’ monophosphates and 3’ hydroxyl groups all consistent with the notion that long dsRNA was processed by an RNase III enzyme into 21-23 base-pair duplexes (reported to be the Dicer enzyme by Hannon in Cold Spring Harbor in the same month).

This led them to test whether small duplex RNAs were crucial functional intermediates between long dsRNA and mRNA cleavage, by synthesizing duplex RNAs and adding them to the Drosophila system. I quote: “Perhaps the 21-nt RNAs are present in double-stranded form in the endonuclease complex, but only one of the strands can be used for target RNA recognition and cleavage”. Indeed, this prediction turned out to be correct and synthetic duplex RNAs could silence mRNAs in this system, and duplexes with 2-3 nucleotide 3’ overhangs, the hallmark of the hypothesized RNase III-type processing, worked best. These data then formed the basis for the Tuschl I patent series to which Alnylam, RXi, and Sirna Therapeutics obtained co-exclusive licenses. My guess is that Alnylam actually would not mind if this patent wasn’t issued after all, since for some obscure reason UMass, unlike the Whitehead Institute, MIT, and MPI decided to grant RXi and Sirna co-exclusive licenses. Equally curious is the fact that while in the January 2001 paper the duplex RNAs were shown to work only in fly lysate, in the Tuschl I series, out of the blue, human cell studies are described. I could well imagine that the ultimately issued Tuschl I patent will be solely focused on the fly data, so that the first human siRNA description would be exclusive to the Tuschl II series (I would encourage you to read my 27 May, 2007 Blog “2007RNAi Therapeutics IP: The Importance of Being Tuschl” on this issue).

Clearly, work in human cells was ongoing at the time in Tuschl’s lab, and they conclude the fly paper in Genes and Development with the ominous statement: “The siRNAs may be effective in mammalian systems, where long dsRNAs can not be used because they activate the dsRNA-dependent protein kinase (PKR) response (Clemens 1997). As such, the siRNA duplexes may represent a new alternative to antisense or ribozyme therapeutics.” The compositions, methods, and uses of synthetic siRNAs in human cells are described in excruciating detail in the Tuschl II patent series, much of which has issued in the EU and US and is exclusively licensed to Alnylam.

A lot of the claims by other companies such as Silence Therapeutics and Invitrogen’s Stealth siRNAs center around the fact that Tuschl II emphasizes the 3’ overhangs of siRNAs, and that blunt-end siRNAs are therefore not subject to Alnylam’s IP estate, but completely ignore the fact that Tuschl, both in his fly and human work indeed tested blunt-end siRNAs, just that they did not perform as well as the overhang siRNAs. I speculate that the reason why Alnylam has not come out and spelt out this fact is because they may think that their equally exclusively licensed Kreutzer-Limmer patent series (use of short dsRNAs for gene silencing in mammals) provides even better coverage for the use of blunt-end siRNAs. Alnylam’s competitors, including Merck, have therefore focused their efforts of fighting Alnylam’s IP dominance on narrowing the scope of Kreutzer-Limmer, particularly in Europe, and have succeeded in doing so last summer to reduce the covered length to 15-21 nucleotides. However, a so called divisional patent application based on the Kreutzer-Limmer patent was granted in Europe in 2005 and has even broader claims than the original patent (15 to 49 base-pair duplexes). It is further ironical that a weakening of Kreutzer-Limmer would only strengthen Tuschl II’s scope. In addition, Tuschl II further covers modifications and conjugations to siRNAs, a claim which Alnylam has cemented by obtaining an exclusive license to the Crooke modification patent estate from ISIS.

While RXi may have marketed their recent StealthTM siRNA license from Invitrogen for therapeutic purposes, in my mind “StealthTM” siRNAs are nothing more than a marketing gimmick disguising the fact that these are 25 base-pair, blunt-end siRNAs with a supposedly magical pattern of base modifications. I would therefore not be surprised if Stealth failed to fulfill the non-obviousness criteria, in addition to the fact that I have not seen any evidence that Stealth, per se, performs any better, if not worse than the classical Tuschl siRNA design. What RXi probably won’t tell you is that Invitrogen has deemed it necessary to gain access to the Kreutzer-Limmer patents through a licensing agreement with Alnylam for the use of Invitrogen’s siRNAs for research applications only.

With regards to Dicer-substrate, licensed by both Nastech and Dicerna, I see practical value in that Dicer-substrates may be beneficial for RNAi delivery purposes in that they provide increased flexibility in covalently conjugating the Dicer-substrate to the delivery carrier, while siRNAs have to be reversibly conjugated, e.g. via disulfide linkages, to achieve the same. However, this does not guarantee the uniqueness of Dicer-substrate since a lot of the duplex length and the conjugation idea is subject to the pre-dating Kreutzer-Limmer and Tuschl patent series. Moreover, in his fly experiments with 29 base-pair duplexes, Tuschl already demonstrated “RNase III-substrate”. Hannon should also have relevance for Dicer substrate in that he was the first to describe Dicer to be the enzyme that mediates dsRNA processing in flies, and likely humans.

Hannon continued his work on the practical implication of dsRNA processing and was one of the first to explicitly describe the use of Dicer-substrates in humans in the form of DNA-directed hairpin expression cassettes driven by a Pol III promoter. While this 2002 paper in Genes and Development was as much inspired by the newly emerging knowledge on microRNA processing as much as by Tuschl’s 2001 findings, “Tuschl and colleagues first showed that short RNA duplexes, designed to mimic the products of the Dicer enzyme, could trigger RNA interference in vitro in Drosophila embryo extracts”), the European group (Brummelkamp et al.) that published in Science on the same subject the same month were mostly inspired by Tuschl: “We report here a new vector system, named pSUPER, which directs the synthesis of small interfering RNAs (siRNAs) in mammalian cells.” In any case, both Alnylam and RXi have gained access to the Hannon patents which touch on both DNA-directed RNAi and Dicer-substrate (synthetic or DNA-directed).

In a confusing turn of events, however, Hannon reported in 2005 that hairpins, in this case synthetic versions though, with longer duplex regions often worked better (= more potent and reliably) than the classical 19 base-pair hairpin design. This could be explained by the observation that the efficiency of RNAi should be enhanced by requiring a Dicer processing step since this is coupled to the RiSC-mediated gene silencing step. The fact that the original 19 base-pair hairpins, first thought to be processed by Dicer, were found to be inferior could be explained by their inefficient processing into siRNAs by some RNases not normally related to RNAi. Essentially the same conclusion was reached by a paper in the same issue of Nature Biotechnology from John Rossi’s group at the City of Hope, this time, however, by employing synthetic 25-30 base-pair duplexes (licensed to Nastech and Dicerna) instead of synthetic hairpins. For a discussion of Dicer-substrate science and IP, please refer to my October 31, 2007 Blog: “A new player in RNAi Therapeutics: Dicerna Pharmaceuticals”.

Besides RNA polymerase III-driven small hairpins, DNA-directed RNAi can also be initiated through more microRNA-like constructs. This was enabled by the elucidation of the microRNA silencing pathway and the trick basically is to design DNA vector constructs that will mimic one of the RNA intermediates during microRNA processing. These methods have the advantage that RNA polymerase II promoters can be employed with potential tissue-specific or other regulation. This should allow for potentially safer DNA-directed RNAi, although RNA polymerase III constructs have extreme knockdown potencies. Brian Cullen’s (Duke) and particularly Narry Kim’s (Seoul, Korea) groups have spear-headed these efforts, but I have not heard from companies yet specializing on the use of such RNAi constructs for therapeutic purposes. It is further likely that the original DNA-directed RNAi patents will be quite important for the commercialization of these later methods.

In addition to employing RNAi triggers that funnel into the RNAi pathway upstream of siRNAs, it is also theoretically possible to make use of at least two more intermediates functioning downstream of siRNA generation: single-stranded guide RNA that recognizes target mRNA within RiSC and a 3-stranded intermediate in which the passenger (=non-targeting) strand is interrupted based on findings from a number of groups, again almost simultaneously about 2 years ago, that the passenger strand was cut prior to guide RNA RiSC loading, analogously to how target mRNAs are cleaved.

The single-strand siRNA method is mostly investigated by ISIS for commercial purposes, probably because it feels that their IP position on single-stranded antisense RNAs would make them the dominant player in single-stranded RNAi. It should be kept in mind, however, that it was again the Tuschl group, known to be close to Alnylam, that first reported on single-stranded RNAi inducers (Martinez et al., 2002) and patents have been filed. Moreover, evidence so far suggests that single-stranded RNAs are only very inefficiently recognized by the endogenous RNAi machinery and it is doubtful that any potential advantages of single-stranded RNAs versus duplex RNAs would ever make up for the inferior potency. Patents covering 3-stranded siRNAs have been filed for by Nastech, although they have not been associated with any of the initial reports on siRNA passenger strand cleavage. It will therefore be interesting to determine the priority dates of the various discoveries, and probably more importantly, data as to the efficiency of these “meroduplex RNAs” (same initials as Nastech’s planned RNAi spin-out mdRNA) compared to other RNAi inducers. Such 3-stranded siRNAs may offer certain advantages with regard to conjugation chemistries and the fact that short RNA strands are cheaper to synthesize than larger ones, but until this is proven it will look just like another thinly disguised patent work-around attempt.

In summary, it is clear that it was Fire and Mello’s discovery on long dsRNAs as RNAi inducers in worms and Tuschl’s extensive body of work leading to the delineation of the classical duplex siRNA that opened up RNAi for therapeutic use. Many of the other developments are directly derived from both of these fundamental discoveries and require appropriate IP licenses. The combination of Tuschl II, Kreutzer-Limmer, and all the other patents it has either exclusive or non-exclusive access to, makes Alnylam the gate-keeper of RNAi Therapeutics. The exact terms of companies wishing to commercialize RNAi Therapeutics will vary depending on their co- or non-exclusive access to some of these fundamental patents, how far removed their exact siRNA derivatives are from the classical siRNA design as well as the ability to prove their utility. While this dominant IP position by Alnylam may make them unpopular and almost look like a bully, one should not forget that concentration and clarity of IP encourages investments particularly in the risky business of drug development and therefore will increase the likelihood of maximizing the therapeutic potential of the technology. It should also be said that Alnylam has been pretty good in de-risking RNAi technology, thereby benefitting the whole field of RNAi Therapeutics, in addition to granting access to RNAi technology through their licensing policy, although the terms will increase the longer you wait. Outside this core RNAi IP, other IP, particularly relating to delivery, but also access to validated targets will prove valuable, albeit much more fragmented.

In my last blog on this RNAi IP series, I would like to briefly discuss individual companies according to technology strength and IP position. Alnylam’s view on this issue will be presented in a special IP-focussed investor presentation on November 28 at the 19th Annual Piper Jaffray Health Care Conference and can be followed live or recorded by webcast on the company’s website.

Erratum: Please note that in my discussion of Dicer-substrate in the October 31, 2007 Blog: “A new player in RNAi Therapeutics: Dicerna Pharmaceuticals”, I mistakenly stated that Hannon’s long hairpin RNAs were DNA-directed, when they actually studied synthetic versions of these hairpins.

Tuesday, June 5, 2007

RNAi by another Means: Dicer-substrate RNAs

The most widely known and used triggers of RNAi are small interfering RNAs (siRNAs) and DNA-directed hairpin structures. Whereas siRNAs are channelled into the downstream steps of the RNAi pathway, the RiSC complex, hairpin RNAs in humans first have to undergo processing by the endogenous microRNA pathway to yield the active small silencing RNAs. There is, however, a third way to induce RNAi, and these are so called Dicer-substrate RNAs. Their potential utility for gene silencing was recognised following the finding by the Cleary/Hannon [Siolas et al. (2005) Nat. Biotechnol. 23:181] and Rossi [Kim et al. (2005) Nat. Biotechnol. 23: 222] groups that longer RNA duplexes of around 25-27 bp that undergo initial processing by the RNAi enzyme Dicer to yield the active small RNA are in some cases more efficient in gene than the equivalent siRNA. This is thought to be the consequence of Dicer actually forming part of the RiSC loading complex, thereby ensuring efficient hand-off of the small RNA product into the RiSC silencing complex.

There are a number of reasons why Dicer-substrate RNAs have not become a mainstream tool for inducing RNAi yet. Among these were the difficulty of manufacturing Dicer-substrate RNAs that would yield predictable small RNA effectors, non-specific perturbations of gene expression due to cytokine induction by the dsRNA, and the lack of reliable Dicer-substrate RNA design rules. Finally, RNAi inducers upstream of siRNAs may compete with more elements of the microRNA pathway than necessary and the longer length of RNAs will add to the cost and complexity of synthesis.

Some of these challenges, however, are being met mostly as a result of a collaboration between the Rossi lab of the City of Hope, California, and the nucleic acid synthesis company IDT which licensed Dicer-substrate RNAs for use in non-therapeutic applications. Creating dsRNA with one blunt end that contains DNA nucleotides on one strand and 2 nucleotide 3’ overhangs on the other end introduced directionality into Dicer processing. Moreover, it appears that the same modifications that can be introduced into standard siRNAs to avoid cytokine induction also work well for Dicer-substrate RNAs. One weakness that remains, however, is the lack of efficient Dicer-substrate RNA design rules. However, in collaboration with Bio-Rad, IDT is screening and developing sets of validated Dicer-substrate RNAs that have greater than 85% knockdown efficiencies.

It remains to be seen how well accepted Dicer-substrate RNAs will eventually become. With IDT, possibly the world’s largest synthetic nucleic acids supplier for research purposes, behind the technology, Dicer-substrate RNAs should be able to reach most researchers in the field. It will therefore be their hands-on experience, publications showing the benefits of Dicer-substrate RNAs and word-of-mouth that will determine the success of Dicer-substrate RNAs. As siRNAs have shown, a biotechnology that works predictably does not need much advertisement. Some interest meanwhile is demonstrated by the fact that Novartis is apparently testing a small library of Dicer-substrate RNAs for target validation purposes, and Nastech Pharmaceutical Company has obtained an exclusive license from the City of Hope for developing Dicer-substrate RNAs as therapeutics against a handful of gene targets.

With regards to IP issues, I would expect that their therapeutic use would require some kind of licensing agreement from the beneficiaries of the Tuschl I and II patents partly because of the 2nt 3’ overhang structures and the fact that Dicer-substrate RNAs are the immediate precursors of siRNAs. A precedent for this kind of licensing agreement has been set before by Benitec, which in 2005 has taken a license from Alnylam for the “targeted gene silencing mediated by short interfering RNAs (siRNAs) generated from DNA constructs introduced into cells”.
By Dirk Haussecker. All rights reserved.

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