Sunday, August 30, 2009

Artificial Life One Step Closer: Scientists Clone And Engineer Bacterial Genomes In Yeast And Transplant Genomes Back Into Bacterial Cells

Yeast. The entire bacterial genome from Mycoplasma mycoides was cloned in a yeast cell by adding yeast centromeric plasmid sequence to the bacterial chromosome and modifying it in yeast using yeast genetic systems. This modified bacterial chromosome was then isolated from yeast and transplanted into a related species of bacteria, Mycoplasma capricolum, to create a new type of M. mycoides cell. (Credit: Wikimedia Commons. Public Domain Image)


Researchers at the J. Craig Venter Institute (JCVI), a not-for-profit genomic research organization, have just published results describing new methods in which the entire bacterial genome from Mycoplasma mycoides was cloned in a yeast cell by adding yeast centromeric plasmid sequence to the bacterial chromosome. Researchers modified it in yeast using yeast genetic systems. This modified bacterial chromosome was then isolated from yeast and transplanted into a related species of bacteria, Mycoplasma capricolum, to create a new type of M. mycoides cell.

This is the first time that genomes have been transferred between branches of life—from a prokaryote to eukaryote and back to a prokaryote. The research was published by Carole Lartigue et al in the journal Science on August 21.

Hamilton Smith, M.D., one of the leaders of the JCVI team said, “I believe this work has important implications in better understanding the fundamentals of biology to enable the final stages of our work in creating and booting up a synthetic genome. This is possibly one of the most important new findings in the field of synthetic genomics.”

The research published today was made possible by previous breakthroughs at JCVI. In 2007 the team published results from the transplantation of the native M. mycoides genome into the M. capricolum cell which resulted in the M. capricolum cell being transformed into M. mycoides. This work established the notion that DNA is the software of life and that it is the DNA that dictates the cell phenotype.

In 2008 the same team reported on the construction of the first synthetic bacterial genome by assembling DNA fragments made from the four chemicals of life—ACGT. The final assembly of DNA fragments into the whole genome was performed in yeast by making use of the yeast genetic systems. However, when the team attempted to transplant the synthetic bacterial genome out of yeast into a recipient bacterial cell, all the experiments failed.

The researchers had previously established that no proteins were required for chromosome transplantations, however they reasoned that DNA methylation (a chemical modification of DNA that bacterial cells use to protect their genome from degradation by restriction enzymes, which are the proteins that cut DNA at specific sites) might be required for transplantation. When the chromosome was isolated direct from the bacterial cells it was likely already methylated and therefore transplantable due to it being protected from the cells restriction enzymes.

In this study, the team began by cloning the native M. mycoides genome into yeast by adding a yeast centromere to the bacterial genome. This is the first time a native bacterial genome has been grown successfully in yeast. Specific methylase enzymes were isolated from M. mycoides and used to methylate the M. mycoides genome isolated from yeast. When the DNA was methylated the chromosome was able to be successfully transplanted into a wild type species of M. capricolum. However, if the DNA was not first methylated the transplant experiments were not successful. To prove that the restriction enzymes in the M. capricolum cell were responsible for the destruction of the transplanted genome the team removed the restriction enzyme genes from the M. capricolum genome. When genome transplantations were performed using the restriction enzyme minus recipient cells, all the genome transplantations worked regardless of if the DNA was methylated or not.

“The ability to modify bacterial genomes in yeast is an important advance that extends yeast genetic tools to bacteria. If this is extendable to other bacteria we believe that these methods may be used in general laboratory practice to modify organisms,” said Sanjay Vashee, Ph.D., JCVI researcher and corresponding author on the paper.

The team now has a complete cycle of cloning a bacterial genome in yeast, modifying the bacterial genome as though it were a yeast chromosome and transplanting the genome back into a recipient bacterial cell to create a new bacterial strain. These new methods and knowledge should allow the team to now transplant and boot up the synthetic bacterial genome successfully.

The research published August 21 by JCVI researchers was funded by the company Synthetic Genomics Inc., a company co-founded by Drs. Smith and Venter.

Journal reference:

  1. Lartigue et al. Creating Bacterial Strains from Genomes That Have Been Cloned and Engineered in Yeast. Science, August 20, 2009; DOI: 10.1126/science.1173759

Friday, August 28, 2009

Vaxine trials show 1st swine flu vaccine works well

Vaxine trials show 1st swine flu vaccine works well
Narayanan Suresh
Singapore, Aug 26, 2009: The initial results from the clinical trials of the world’s first recombinant vaccine against swine flu, developed by a small South Australian biotech company, Vaxine Pty Ltd, indicates that the vaccine is working well in humans.

Vaxine started the human clinical trials of the world’s first swine flu vaccine, on July 20, 2009. Three days ahead of Australia’s pharma giant CSL’s vaccine trials.

“The safety data so far is excellent and the vaccine is better tolerated than even the standard flu vaccine,” Vaxine Pty’s research director, Prof Nikolai Petrovsky, told BioSpectrum.

Prof Petrovsky said Vaxine’s swin flu vaccine has been tested in three different doses of antigen ranging from 3 to 45 micrograms of haemagglutinin with and without adjuvant. The company is using its own proprietary Advax adjuvant. The vaccine’s antigen is a recombinant protein supplied by Protein Sciences Corporation, based in Meridien, USA. The vaccine is designed to provide powerful protection against influenza through anti-influenza antibodies, and T-cells which are some of the key components of the body’s natural defense against the influenza virus.

Seven other trials of swine flu vaccine developed by vaccine companies in five countries are currently going on.

Being the world’s first swine flu vaccine, this Australian company’s efforts are watched avidly around the world. The efficacy data of the vaccine is expected to release in a few weeks. For the clinical trials, the Vaxine’s vaccine has been administered to 275 male and female patients in the age group of 18 to 70 at Flinders Medical Center in Adelaide. Vaxine is a spinout of Flinders University. The clinical trials are being conducted by Prof David Gordon at Flinders University.

China’s Sinovac has announced that the results of its swine flu vaccine trials which started a week after Vaxine, has also been good. Sinovac is using a single dose of 15 mg. Prof Petrovsky said his company’s genetically-engineered vaccine has several advantages over other products such as CSL’s egg based vaccine. “Our vaccine is free of egg protein contaminants and so is safe for people with serious egg allergy. The vaccine also does not have viral RNA contaminants that cause occasional severe reactogenecity and being in single dose vials does not contain thiomersal,” Vaxine’s research head says.

Set up in 2002, Vaxine has started clinical trials of its other vaccines for seasonal flu, Japanese encephalitis, Hepatitis B and bee sting allergy. Vaxine was quickly off the block in the global race to develop a vaccine against swine flu. “Never before has a new influenza vaccine been delivered to the clinic so far. It is extraordinary what has been achieved in less than three months since the seed virus was first identified,” says Dr Dimitar Sajkov, one of Vaxine’s clinical investigators. He indicated that the success of Vaxine’s vaccine could signal the beginning of the end for old-fashioned egg-based vaccines.
Most of the seasonal flu vaccines are grown using the chicken-egg method as the virus is known to grow very well in this medium. Vaxine has already received many enquiries for the supply of the vaccine from countries like Malaysia, South Korea, Indonesia and Saudi Arabia. In mid-August, Vaxine was honored with the National Innovation Award at the Telstra Business Awards in Sydney, recognizing the company’s breakthrough efforts in the development of swine flu vaccine.
© BioSpectrum Bureau