@inproceedings {470,
	title = {Radioactive diffusion without complete signal annihilation},
	booktitle = {Proceedings of the 36th Samahang Pisika ng Pilipinas Physics Conference},
	year = {2018},
	month = {6{\textendash}9 June 2018},
	pages = {SPP-2018-PC-19},
	address = {Puerto Princesa City, Philippines},
	abstract = {The radiation-induced bystander effect (RIBE) is a non-contact phenomenon in which cells undergo genetic mutations despite the lack of a direct radiation traversal. In traditional models of the effect, the radiation-carrying signals travel through a medium via random walks and are annihilated upon causing successful mutations. In this paper, we analyze the effect of removing immediate signal annihilation upon successful contact. We find that the removal of immediate signal annihilation is significant only when the initial dosage, the mean number of re-emitted signals, or the probability of mutations are high. Future researchers may take the result into consideration when building models of RIBE.},
	url = {https://paperview.spp-online.org/proceedings/article/view/SPP-2018-PC-19},
	author = {Eduard Renzo Santos and Cristine Villagonzalo}
}
@inproceedings {santos,
	title = {The radio-biological bystander effect as a non-linear diffusive phenomenon},
	booktitle = {Proceedings of the 35th Samahang Pisika ng Pilipinas Physics Conference},
	year = {2017},
	month = {7{\textendash}10 June 2017},
	pages = {SPP-2017-3B-03},
	address = {Cebu City, Philippines},
	abstract = {The radiation-induced bystander effect (RIBE) is a phenomenon in which cells undergo genetic damage without having been directly irradiated by an external radiation source. In current literature, it is often modeled via Monte Carlo simulations with the standard Brownian motion as the underlying mode of diffusion. In this study, we replace the standard Brownian motion with the fractional Brownian motion (fBm) and compare it with previous experimental data. We note that the ensemble probability of irradiation is slightly higher in the subdiffusive regime as compared to the standard Brownian motion, which tends to underestimate it. Furthermore, the uniformity of irradiation is preserved in the subdiffusive regime. For these reasons, we conclude that the radio-biological bystander effect is more appropriately examined in the subdiffusive regime (H < 1/2).},
	url = {http://paperview.spp-online.org/proceedings/article/view/74},
	author = {Eduard Renzo Santos and Cristine Villagonzalo}
}
@inproceedings {316,
	title = {Clustering of irradiated cells due to the bystander effect},
	booktitle = {Proceedings of the 34th Samahang Pisika ng Pilipinas Physics Congress},
	year = {2016},
	pages = {SPP-2016-1C-01},
	address = {University of the Philippines Visayas, Iloilo City},
	abstract = {For quite some time, it has been observed that cells become irradiated despite the fact that no charged particle has ever directly traversed them. This is known as the radiation-induced bystander effect (RIBE). Because RIBE can be characterized as a Markov branching process, some degree of clustering can be expected to occur. By removing the influence of cell positioning on the formation of cancer clusters, we determine that alone, RIBE has a weak, yet non-negligible effect on cluster formation.},
	author = {Eduard Renzo Santos and Cristine Villagonzalo}
}
