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Biomedical subjects

Lori A Kelly

Publications and source records attributed to Lori A Kelly.

5 recordsLinked to original sources

Evaluation of microbial RNA extractions from Streptococcus pneumoniae.

The mechanisms that control Streptococcus pneumoniae's ability to colonize the nasopharynx or to invade the middle ear and cause acute otitis media are not understood. Focused study of these mechanisms requires efficient methods for the extraction of microbial RNA from minute clinical samples. Several lysis/extraction methods were tested and compared to determine the optimal conditions for isolating intact total RNA from pneumococcal cells. The sensitivity and efficiency of the extractions were evaluated by reverse transcription polymerase chain reaction (RT-PCR). Compared to other methods, mechanical homogenization in TRIZOL was the most efficient for releasing microbial RNA, and addition of polyinosinic acid (Poly I) as an RNA carrier increased the assay sensitivity to 10(2) colony forming units when detected by RT-PCR amplification of 16S ribosomal RNA or messenger RNA for penicillin binding protein 2b. Quantitative results were confirmed using a ribonuclease protection assay. Penicillin binding protein 2b was also detected in rat middle ear mucosa recovered 5 weeks after middle ear challenge with S. pneumoniae. This study describes a useful core methodology for use in identifying pneumococcal virulence genes from small titer samples and has promising applications in clinical studies of pneumococcal nasopharyngeal colonization and otitis media pathogenesis.

Animals↗

Identification of a pre-mRNA splicing factor, arginine/serine-rich 3 (Sfrs3), and its co-expression with fibronectin in fetal and postnatal rabbit airway mucosal and skin wounds.

Fibronectin (FN) is a multi-functional, adhesion protein and involved in multi-steps of the wound healing process. Strong evidence suggests that FN protein diversity is controlled by alternative RNA splicing; a coordinated transcription and RNA processing that is development-, age-, and tissue/cell type-regulated. We previously demonstrated that fetal rabbit airway mucosal healing is regenerative and scarless. Expression, regulation, and biological function of the FN gene and various spliced forms in this model are unknown. Airway and skin incisional wounds were made in fetal (gestation days 21-23), weanling (4-6 weeks) and adult (>6 months) rabbits. Non-wounded and wounded tissues were collected at 12 h (all age groups), 24 h and 48 h (weanling only) post-wounding. Expression profiles were obtained using mRNA differential display and cDNAs of interest were cloned, sequenced and validated by real-time PCR. Here, we report two rabbit cDNAs that showed similar expression patterns after wounding. One encodes a rabbit fibronectin gene, Fn1, and another shares a high sequence homology to a human pre-mRNA splicing factor, arginine/serine-rich 3 (Sfrs3), coding for a RNA binding protein, SRp20. Both Fn1 and Sfrs3 mRNAs were suppressed in fetal wounds but induced in postnatal wounds 12 h post-wounding. The increased levels of both Fn1 and Sfrs3 transcripts were sustained up to 48 h in weanling airway mucosal wounds. The augmentations of the two genes in postnatal airway mucosal wounds were more prominent than that in skin wounds, indicating that the involvement of Sfrs3 and Fn1 genes in postnatal airway mucosal wounds is tissue-specific. Literature provides evidence that SRp20 is indeed involved in the alternative splicing of FN and that the embryonic FN variants reappear during adult wound healing. A connection between the enhanced molecular activity of Sfrs3 and the regulation of the FN gene expression through alternative splicing during the early events of postnatal airway mucosal wound repair was proposed.

Animals↗

Development of quantitative reverse transcriptase PCR assays for measuring gene expression.

Real-time, quantitative reverse transcriptase (RT)-PCR is a very useful and powerful technology for analysis of gene expression. At a first pass, real-time PCR appears to be a simple extension of regular PCR, and it should therefore be easy for an experienced PCR user to convert to quantitative assays. In practice, however, our experience would indicate that this is not usually the case, and most novice real-time PCR users run into problems even though they are very capable at regular PCR. One problem is that, unlike Northern blots, which are technically difficult but typically either work or do not, real-time PCR assays, even poorly designed ones, usually give data. Unfortunately, these data, or their interpretation, may be erroneous, since there are many potential pitfalls that need to be avoided when designing and using real-time PCR for measurement of gene expression. The purpose of this chapter is not to try to discuss the complexities of real-time PCR in detail (which would require a whole book), but, instead, to provide a simple outline for the development of real-time PCR assays. If followed, these guidelines should allow the reader to develop real-time PCR assays that avoid the most common pitfalls and that are capable of producing reliable and accurate gene expression data.

Animals↗

Rapid, quantitative reverse transcriptase-polymerase chain reaction: application to intraoperative molecular detection of occult metastases in esophageal cancer.

OBJECTIVE: Our earlier data showed that quantitative reverse transcriptase-polymerase chain reaction can discriminate patients with node-negative cancer who are at high risk for recurrence. The objective of this study was to determine whether a new, more rapid quantitative reverse transcriptase-polymerase chain reaction assay could provide this information in a time frame suitable for intraoperative decision making. METHODS: We studied formalin-fixed, archived lymph nodes from 30 patients with histologically determined node-negative esophageal cancer with rapid quantitative reverse transcriptase-polymerase chain reaction to measure expression of carcinoembryonic antigen messenger RNA. We also performed rapid quantitative reverse transcriptase-polymerase chain reaction on 37 snap-frozen lymph nodes from 23 patients. Eleven of the 23 patients had benign esophageal disorders (negative control group). The other 12 had esophageal cancer, 6 with histologically determined positive lymph nodes and 6 with histologically determined negative lymph nodes. RESULTS: In the retrospective analysis of archival tissue from 30 patients with esophageal cancer with histologically determined negative lymph nodes, rapid quantitative reverse transcriptase-polymerase chain reaction predicted disease recurrence with a sensitivity and a specificity of 90% and 80%, respectively, and was comparable to conventional quantitative reverse transcriptase-polymerase chain reaction. In the frozen-tissue analysis rapid quantitative reverse transcriptase-polymerase chain reaction detected significantly higher levels of carcinoembryonic antigen expression in all 12 of the histologically determined positive lymph nodes than in the benign nodes. For 2 of these 12 nodes the intraoperative frozen-section analysis had negative histologic results, and N1 status was determined only on final pathologic examination. Rapid (intraoperative) quantitative reverse transcriptase-polymerase chain reaction discriminated both nodes as positive. Among the 14 histologically determined negative nodes, 1 of 3 nodes from 1 patient showed increased carcinoembryonic antigen according to rapid quantitative reverse transcriptase-polymerase chain reaction, and this patient had a clinical recurrence. CONCLUSIONS: In our study we were able to rapidly discriminate patients with node negative-esophageal cancer who had a high risk of recurrence. In frozen tissues rapid quantitative reverse transcriptase-polymerase chain reaction correlated with final pathologic report for 11 of 12 patients. In the 1 discordant case, the quantitative reverse transcriptase-polymerase chain reaction result was positive and may have detected microscopically occult metastasis, because this patient did have disease recurrence. Rapid quantitative reverse transcriptase-polymerase chain reaction was more sensitive than intraoperative frozen sections for detecting metastatic disease. These data suggest that rapid quantitative reverse transcriptase-polymerase chain reaction may have a prognostic role and could guide intraoperative decisions.

Aged↗

Temperature-controlled primer limit for multiplexing of rapid, quantitative reverse transcription-PCR assays: application to intraoperative cancer diagnostics.

BACKGROUND: Rapid-cycling, real-time PCR instruments bring the opportunity for improved intraoperative detection of metastasis to sentinel lymph nodes. Rapid, standardized, and internally controlled assays need to be developed that are sensitive and accurate. METHODS: We describe rapid, multiplexed, internally controlled, quantitative reverse transcription-PCR (QRT-PCR) assays for tyrosinase and carcinoembryonic antigen mRNAs on the SmartCycler (Cepheid). We used a temperature-controlled primer-limiting approach to eliminate amplification of the endogenous control gene as soon as its signal had reached threshold. Positive-control oligonucleotide mimics were incorporated into all reactions to differentiate failed reactions from true negative samples. RESULTS: The optimized assays for rapid QRT-PCR yielded results with threshold cycle values that were only 1-2 cycles higher than slower, more conventional protocols. In rapid PCR, the temperature-controlled multiplex assay was quantitative over a dynamic range of at least 15 cycles, compared with only 6 cycles for conventional multiplexing methods. All histologically positive lymph nodes examined were also QRT-PCR positive for the appropriate marker, and the exogenous, internal positive-control mimics produced signals in all negative samples. CONCLUSION: Internally controlled, rapid QRT-PCR assays can be performed in an intraoperative time frame and with sufficient sensitivity to detect histologically identified metastases to lymph nodes.

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