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Showing posts with label World Muscle Society Congress. Show all posts
Showing posts with label World Muscle Society Congress. Show all posts

Monday, October 13, 2014

Antisense Technology Is Feasable for Neurodegenerative Drug Development

Last week at World Muscle, ISIS Pharmaceuticals provided an update on their phase II study results for ISIS-SMNRx for the infant- and child-onset forms of spinal muscular atrophy (SMA).  Importantly, biomarker and biodistribution results were reported that clearly showed that ISIS-SMNRx is doing exactly at what it was designed to do, namely meaningfully increase target gene expression in the central nervous system (CNS).

The data not only greatly de-risk ISIS-SMNRx, but open up phosphorothioate-based antisense technology for a whole range of other, largely severe CNS-based diseases of high unmet need, including Huntington's disease, the spinal cerebellar ataxias, Alzheimer's, Parkinston's- you name it!

Biodistribution

Specifically, the data showed that despite only a focal, intrathecal infusion of the antisense drug into the lower spine, it readily distributed throughout the CNS up to the brain and at concentrations (10-30ug per gram tissue) that are strongly predicted to support both steric blocking and RNaseH antisense mechanism of actions in the CNS for 2' MOE chemistry.  Further chemistry improvements such as cET are opening the therapeutic window even more so.  What is more, these concentrations were maintained for months, thus further supporting the apparent therapeutic benefits seen in these open-label studies.

Note that the effective concentration for antisense mechanisms will differ according to target tissues; e.g. in the liver, largely due to competition from phagocytic Kupffer cells, the effective concentrations are 100ug/g and above with 2' MOE chemistry.

With the generous support of SMA families, the company was also able to look for the drug and the SMN protein in tissue sections from 3 deceased infants.  These investigations showed that the phosphorothioate oligo had been taken up pretty much in every neuronal and non-neuronal cell types. 

Such broad-based uptake may be quite important according to the opening keynote address of ISIS collaborator Don Cleveland last night at the annual OTS meeting in San Diego, given that expressions of disease-causing genes in various cell types, not just the neurons, seem to contribute to most neurodegenerative diseases.


Biomarker

In terms of drug action, the SMN protein was found to be re-expressed in the corresponding cells as intended for the splice-modulating approach of ISIS-SMNRx.  This was shown by immunofluorescent analysis.  Moreover, quantitative PCR showed that the expression of the intended full-length SMN2 mRNA was increased by 2 to 3-fold, consistent with the 2 to 3-fold increases in SMN2 proteins found from cerebrospinal fluid (CSF) samples in the child-onset studies.

No dose-limiting safety issues were seen and the intrathecal infusions which are predicted to be needed on a ~6 month-basis for many of the anticipated CNS-related antisense applications could be performed without having to resort to general anesthesia.

For SMA, genetically speaking all this essentially turns a type I infant-onset SMA baby into a less severe type II/III child, and a type II/III SMA child into a normal one, with the caveat that this benefit obviously only accrues from the time the drug is given which, unfortunately, may be too late for many type I SMA babies.  I was e.g. somewhat disappointed that no apparent correlation was seen between onset of antisense administration and therapeutic outcomes in the infant study, although clearly the numbers may well have been too small (n=20). I am very hopeful, however, that those infants making it out to say 18 months and beyond with ISIS-SMNRx may see very good outcomes indeed.

Despite the caution, all this was accompanied by apparent therapeutic benefits in terms of survival and muscle strength.  While highly intriguing, due to the open-label nature of the studies and the small patient numbers, it is not my intention to delve more into that aspect of the data and instead focus today on the truly mind-blowing pharmacodynamic data.  These should provide hope for many patients and families with neurodegenerative diseases. If not, we might as well give up on rational drug development.

 

Saturday, October 13, 2012

Sarepta Discloses Dystrophin Expression Data at World Muscle Society Congress


Last week, I criticized Sarepta Therapeutics for failing to disclose critical dystrophin expression data regarding their exon-skipping drug candidate eteplirsen for the treatment of DMD.  Instead, they merely disclosed the percentage of muscle fibers staining positive for dystrophin, i.e. fibers that expressed some dystrophin, which, of course, would be a much more impressively sounding number.  Adding to what I perceived as dubious data presentation was 6-minute-walk test (6MWT) data of which the integrity seemed compromised based on cherry-picking the patients and the fact that the apparent improvement occurred in the open-label extension phase of the study.

Admittedly, the percentage positive fiber number was a previously defined primary endpoint whereas the amount of overall dystrophin relative to normal/healthy was not.  Therefore, like other biotechs frequently do, it might always have been Sarepta’s intention that only the primary endpoint data be presented initially ('top-line data'), with the balance to be disclosed at a future scientific conference or peer-reviewed presentation.

Accordingly, Sarepta today presented additional data at the World Muscle Society Confress in Perth, Australia.  I was pleased to see that at least some dystrophin expression Western blot data were revealed (slide 12)- with a direct comparison to ‘normal’ at that.


First of all, you can see on the left the ‘normal control’ (healthy) comparison.  The labeling seems to be somewhat off as I believe the outermost left lane represents the sample.  You can also see that the normalization control ‘actin’ was less abundant in the control sample compared to the patient samples (by naked eye about 3-5 fold).  This means that the 'normal' dystrophin signal is an under-estimate relative to the patient samples. What is more, because the dystrophin signal in the ‘normal control’ is over-saturated (big black blotch), the ‘real’ relative dystrophin amount should be even more compared to the patients'.  Because there is no standard curve and because of the apparent loading differences (à actin), it becomes an art to estimate the relative dystrophin amount restored by eteplirsen treatment, but with 7 years of doing the same type of experiments at the bench under my belt, I would guesstimate that the true value is about 2-5% of normal.  Certainly not the 20% believed to be necessary to start impacting the disease phenotype. [Correction 10/13/2012: This was an inadvertent mis-characterization of the quoted source, please see the discussion in the Comments section].

Supporting the notion that the Western Blot overestimates restored dystrophin levels, is the RT-PCR experiment on the right.  Again, the larger band which represents the mutated transcript is much more abundant than the re-spliced signal below, indicating that only a minor fraction of the mutant transcripts were re-spliced.  Moreover, smaller PCR products amplify more efficiently compared to larger ones, meaning that the apparent splice correction is an over-estimate.  Similarly, because the mutated and ‘normal’ PCR signals are almost the same (you would expect an mRNA with premature stop codons to be destabilized relative to wild-type), it is likely that the normally spliced bands have reached saturation, further over-estimating the splice correction in the RT-PCR experiment.

Overall, whatever Sarepta’s motives were behind failing to disclose the absolute dystrophin data last week, they clearly provided some of the necessary transparency at the WMSC presentation.  Having said that, I believe the data support the underlying concern that the splice correction may not be enough to be therapeutic.  I would not exclude it, however, as the 20% value, of course, is also an estimate.  Blame a less than rigorous trial design for not knowing for sure for quite some time to come. 
By Dirk Haussecker. All rights reserved.

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